<?xml version="1.0" encoding="ISO-8859-1"?><article xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance">
<front>
<journal-meta>
<journal-id>1816-7950</journal-id>
<journal-title><![CDATA[Water SA]]></journal-title>
<abbrev-journal-title><![CDATA[Water SA]]></abbrev-journal-title>
<issn>1816-7950</issn>
<publisher>
<publisher-name><![CDATA[Water Research Commission (WRC)]]></publisher-name>
</publisher>
</journal-meta>
<article-meta>
<article-id>S1816-79502012000200019</article-id>
<title-group>
<article-title xml:lang="en"><![CDATA[Impacts of invasive alien plants on water quality, with particular emphasis on South Africa]]></article-title>
</title-group>
<contrib-group>
<contrib contrib-type="author">
<name>
<surname><![CDATA[Chamier]]></surname>
<given-names><![CDATA[J]]></given-names>
</name>
<xref ref-type="aff" rid="A01"/>
</contrib>
<contrib contrib-type="author">
<name>
<surname><![CDATA[Schachtschneider]]></surname>
<given-names><![CDATA[K]]></given-names>
</name>
<xref ref-type="aff" rid="A01"/>
</contrib>
<contrib contrib-type="author">
<name>
<surname><![CDATA[le Maitre]]></surname>
<given-names><![CDATA[DC]]></given-names>
</name>
<xref ref-type="aff" rid="A01"/>
</contrib>
<contrib contrib-type="author">
<name>
<surname><![CDATA[Ashton]]></surname>
<given-names><![CDATA[PJ]]></given-names>
</name>
<xref ref-type="aff" rid="A01"/>
</contrib>
<contrib contrib-type="author">
<name>
<surname><![CDATA[van Wilgen]]></surname>
<given-names><![CDATA[BW]]></given-names>
</name>
<xref ref-type="aff" rid="A02"/>
</contrib>
</contrib-group>
<aff id="A01">
<institution><![CDATA[,CSIR Natural Resources and the Environment  ]]></institution>
<addr-line><![CDATA[Stellenbosch ]]></addr-line>
<country>South Africa</country>
</aff>
<aff id="A02">
<institution><![CDATA[,CSIR Natural Resources and the Environment Centre forInvasion Biology ]]></institution>
<addr-line><![CDATA[Stellenbosch ]]></addr-line>
<country>South Africa</country>
</aff>
<pub-date pub-type="pub">
<day>00</day>
<month>00</month>
<year>2012</year>
</pub-date>
<pub-date pub-type="epub">
<day>00</day>
<month>00</month>
<year>2012</year>
</pub-date>
<volume>38</volume>
<numero>2</numero>
<fpage>345</fpage>
<lpage>356</lpage>
<copyright-statement/>
<copyright-year/>
<self-uri xlink:href="http://www.scielo.org.za/scielo.php?script=sci_arttext&amp;pid=S1816-79502012000200019&amp;lng=en&amp;nrm=iso&amp;tlng=en"></self-uri><self-uri xlink:href="http://www.scielo.org.za/scielo.php?script=sci_abstract&amp;pid=S1816-79502012000200019&amp;lng=en&amp;nrm=iso&amp;tlng=en"></self-uri><self-uri xlink:href="http://www.scielo.org.za/scielo.php?script=sci_pdf&amp;pid=S1816-79502012000200019&amp;lng=en&amp;nrm=iso&amp;tlng=en"></self-uri><abstract abstract-type="short" xml:lang="en"><p><![CDATA[We review the current state of knowledge of quantified impacts of invasive alien plants on water quality, with a focus on South Africa. In South Africa, over 200 introduced plant species are regarded as invasive. Many of these species are particularly prominent in riparian ecosystems and their spread results in native species loss, increased biomass and fire intensity and consequent erosion, as well as decreased river flows. Research on the impact of invasive alien plants on water resources has historically focused on water quantity. However, although invasive alien plants also affect the quality of water, this aspect has not been well documented. Alien invasive plants increase evaporation rates, and reduce stream flow and dilution capacity. The biomass inputs of alien invasive plants, especially nitrogen fixers such as Acacia spp., alter nutrient cycles and can elevate nutrient concentrations in groundwater. Alien plant invasions alter the fire regimes in invaded areas by changing the size, distribution and plant chemistry of the biomass. More intense fires increase soil erosion and thereby decrease water quality. In contrast to riparian invasions, aquatic invasive plants have been more extensively studied in South Africa and their impacts on water quality have been relatively well monitored. Water quality in South Africa is rapidly deteriorat-ing, and all factors that influence this deterioration need to be taken into account when formulating actions to address the problem. The changes in water quality brought about by alien plant invasions can exacerbate the already serious water quality problems.]]></p></abstract>
<kwd-group>
<kwd lng="en"><![CDATA[aquatic weeds]]></kwd>
<kwd lng="en"><![CDATA[nutrient cycling]]></kwd>
<kwd lng="en"><![CDATA[erosion]]></kwd>
<kwd lng="en"><![CDATA[fire intensity]]></kwd>
<kwd lng="en"><![CDATA[South Africa]]></kwd>
</kwd-group>
</article-meta>
</front><body><![CDATA[ <p align="right"><font face="Verdana, Arial, Helvetica, sans-serif" size="2"><b>REVIEW</b></font></p>     <p>&nbsp;</p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="4"><b><a name="top"></a>Impacts    of invasive alien plants on water quality, with particular emphasis on South    Africa</b></font></p>     <p>&nbsp;</p>     <p>&nbsp;</p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2"><b>J Chamier<sup>I,    <a href="#back">*</a></sup>; K Schachtschneider<sup>I</sup>; DC le Maitre<sup>I</sup>;    PJ Ashton<sup>II</sup>; BW van Wilgen<sup>III</sup></b></font></p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2"><sup>I</sup>CSIR    Natural Resources and the Environment, PO Box 320, Stellenbosch 7599, South    Africa    <br>   <sup> II</sup>CSIR Natural Resources and the Environment, PO Box 395, Pretoria    0001, South Africa    <br>   <sup>III</sup>Centre forInvasion Biology, CSIR Natural Resources and the Environment,    PO Box 320, Stellenbosch 7599, South Africa</font></p>     <p>&nbsp;</p>     ]]></body>
<body><![CDATA[<p>&nbsp;</p> <hr size="1" noshade>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2"><b>ABSTRACT</b></font></p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">We review the current    state of knowledge of quantified impacts of invasive alien plants on water quality,    with a focus on South Africa. In South Africa, over 200 introduced plant species    are regarded as invasive. Many of these species are particularly prominent in    riparian ecosystems and their spread results in native species loss, increased    biomass and fire intensity and consequent erosion, as well as decreased river    flows. Research on the impact of invasive alien plants on water resources has    historically focused on water quantity. However, although invasive alien plants    also affect the quality of water, this aspect has not been well documented.    Alien invasive plants increase evaporation rates, and reduce stream flow and    dilution capacity. The biomass inputs of alien invasive plants, especially nitrogen    fixers such as <i>Acacia</i> spp., alter nutrient cycles and can elevate nutrient    concentrations in groundwater. Alien plant invasions alter the fire regimes    in invaded areas by changing the size, distribution and plant chemistry of the    biomass. More intense fires increase soil erosion and thereby decrease water    quality. In contrast to riparian invasions, aquatic invasive plants have been    more extensively studied in South Africa and their impacts on water quality    have been relatively well monitored. Water quality in South Africa is rapidly    deteriorat-ing, and all factors that influence this deterioration need to be    taken into account when formulating actions to address the problem. The changes    in water quality brought about by alien plant invasions can exacerbate the already    serious water quality problems.</font></p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2"><b>Keywords:</b>    aquatic weeds, nutrient cycling, erosion, fire intensity, South Africa</font></p> <hr size="1" noshade>     <p>&nbsp;</p>     <p>&nbsp;</p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="3"><b>Introduction</b></font></p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">Invasive alien    plants are a significant environmental problem in South Africa's terrestrial    and freshwater ecosystems (Richardson et al., 1997). Alien trees and shrubs    increase above-ground biomass and evapotranspiration and thereby decrease both    surface water runoff and groundwater recharge (G&ouml;rgens and Van Wilgen,    2004). The increased biomass and evapotranspiration rates associated with invasive    alien plants arise because of their greater height, root depth and senescence,    compared to the native species that they replace (Calder and Dye, 2001). The    increased biomass that accompanies plant invasions also results in more intense    fires that damage the vegetation and soil and lead to excessive erosion; in    addition, invasive alien plants reduce the capacity of rangelands to support    livestock and wildlife, and significantly reduce biodiversity (Richardson and    Van Wilgen, 2004).</font></p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">The reduction in    surface water runoff as a result of current invasions was estimated to be 3    300 Mm<sup>3</sup> (about 7% of the national total, Le Maitre et al., 2000),    most of which is from the fynbos (shrubland) and grassland biomes (Van Wilgen    et al., 2008). These areas are especially sensitive to invasions as most of    South Africa's surface water originates from the Drakensberg mountain grasslands,    and from the Cape mountains which are dominated by fynbos vegetation (Turpie    et al., 2008). The Cape fynbos has been invaded by alien plants that have escaped    from commercial plantations and woodlots on farms (i.e. <i>Pinus, Acacia</i>    and <i>Eucalyptus</i> species), and grasslands' ecological integrity has been    compromised by poor land use management practices, which include overgrazing    and burning regimes, and damming and reclamation of wetlands (Turpie et al.,    2008).</font></p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">The potential water    reductions would be more than 8 times greater if invasive alien plants were    to occupy the full extent of their potential range (Van Wilgen et al., 2008).    These invasions come at a significant cost to the economy, estimated at about    R6.5 billion per annum (about 0.3% of South Africa's GDP of around R2 000 billion),    and with the potential to rise to &gt; 5% of GDP if invasive plants were to    be allowed to invade all of the suitable habitat (De Lange and Van Wilgen, 2010).</font></p>     ]]></body>
<body><![CDATA[<p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">The importance    of these impacts has long been recognised, and in 1995 led to the establishment    of a national programme (Working for Water) to control invasive alien plants    and reduce their negative impacts (Van Wilgen et al., 2011). The programme has    an annual budget of R500 million and a number of criteria have been developed    to prioritise and control operations to ensure that these funds are deployed    to areas where they will be most cost-effective (see, for example, Roura-Pascual    et al., 2009). Criteria include the magnitude of the impacts on water resources    and rangeland condition, and the need to conserve biodiversity, reduce fire    hazard and alleviate poverty. The impacts of invasive alien plants on surface    water runoff and groundwater recharge are relatively well understood and can    be used to set priorities. Although scientists recognise that invasive alien    plants have negative impacts on water quality as well as quantity, a shortage    of information regarding these impacts has prevented them from being considered    in prioritisation exercises by institutions such as Working for Water.</font></p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">This paper addresses    that gap by reviewing the impacts of invasive alien plants on water quality.    Our goal was to identify which impacts had been recognised and quantified, both    internationally and in South Africa, as well as to identify important gaps in    our knowledge.</font></p>     <p>&nbsp;</p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="3"><b>Methods</b></font></p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">We searched for    published studies, as well as 'grey literature', which dealt with the impacts    of invasive alien plants on water quality. We used keywords such as 'alien',    'invasive' and 'water quality' to compile a list of relevant papers and reports    for both South African and international studies. We then consulted water quality    specialists and experts in the field of invasive alien plant ecology to supplement    the list where possible, especially with regard to studies relevant to South    Africa. We divided the papers and reports into 4 categories, which we addressed    separately. The choice of categories was guided by an assessment of the groups    into which studies could be divided. The categories were:</font></p> <ul>       <li><font face="Verdana, Arial, Helvetica, sans-serif" size="2"><b>Implications      of reductions in streamflow and groundwater storage.</b> Reductions in stream      flow and groundwater recharge rates are brought about by increases in evapo-transpiration      caused by invasive alien plants; this results in reduced dilution and greater      concentrations of nutrients, pollutants and suspended solids in water.</font></li>       <li><font face="Verdana, Arial, Helvetica, sans-serif" size="2"><b>Plant biomass      and nutrient cycling.</b> Increased biomass and litter production associated      with invasive alien plants could result in changes in litter chemistry, nitrogen      fixation, and changes in soil chemistry in the natural biome which impact      on water quality.</font></li>       <li><font face="Verdana, Arial, Helvetica, sans-serif" size="2"><b>Fire regimes,      soil erosion and water quality.</b> Invasive alien plants alter vegetation      structure, increase fuel loads and change fire behaviour, which can lead to      soil damage and erosion, thereby adversely affecting water quality.</font></li>       <li><font face="Verdana, Arial, Helvetica, sans-serif" size="2"><b>Aquatic alien      plants and water quality.</b> Alien plants that invade aquatic environments      can directly affect water quality by their presence in or on water bodies.</font></li>     </ul>     ]]></body>
<body><![CDATA[<p>&nbsp;</p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="3"><b>Results</b></font></p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2"><b>Implications    of reductions in streamflow and groundwater storage</b></font></p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">Many species of    invasive alien plants, especially trees and shrubs, have higher evaporation    rates than indigenous species do and, therefore, use more water than the vegetation    they replace (Malan and Day, 2002). The increased evaporation results in reductions    in river flows and reduced groundwater reserves (Malan and Day, 2002). The reduction    in the amount of water in the river reduces its dilution capacity, resulting    in increased concentrations of nutrients and pollutants, increased salinity    and altered buffering capacity of the ecosystem (Malan et al., 2003; Enright,    2000; Nagler et al., 2008).</font></p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">More studies have    focused on the impacts of dilution capacity during flash floods and high runoff    seasons than on the impacts of reduced water quantity (<a href="/img/revistas/wsa/v38n2/18t01.jpg">Table    1</a>). Reduced dilution capacity, however, can also have severe impacts on    water quality. Water with high salinity has an unpleasant taste, poses a human    health risk (DWAF, 1996), reduces crop yields and causes corrosion of industrial    pipes (DEAT, 2000). High concentrations of point-source pollutants such as heavy    metals can be toxic to human health and tend to bioaccumulate in the riparian    vegetation (Mishra and Tripathia, 2008; De Wet et al., 1990). Increased nutrient    concentrations contribute to eutrophication processes, resulting in potentially    toxic algal blooms (Malan and Day, 2002; Malan and Day, 2003a,2003b; Rossouw,    2004).</font></p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">Only one study    attributed these effects directly to invasive alien plants. Invasions of <i>Tamarix    chinensis</i> were found to have almost quadrupled groundwater salinity (from    2 250 mg/</font><font  size="2">&#8467;</font><font face="Verdana, Arial, Helvetica, sans-serif" size="2">    to 5 000 and 10 000 mg/</font><font  size="2">&#8467;</font><font face="Verdana, Arial, Helvetica, sans-serif" size="2">)    by increasing evapotranspiration in the Colorado River in the United States    (Nagler et al., 2008).</font></p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">Very few studies    have quantified the impacts of invasive alien plants on stream flow, runoff    or groundwater recharge. The initial studies in South Africa (Le Maitre et al.,    1996; Le Maitre et al., 2000) used measured reductions in stream flow arising    from forestry plantations (see Dye, 1996) to estimate the potential effects    of invasion of pristine ecosystems by similar species. This approach is justifiable    because invasions also develop into dense stands with similar structure and    bio-mass, although plantations are managed to maintain high wood production    and invasions are not. In addition, invasions often include the river floodplains    and riparian zones, where trees have high transpiration rates (Scott 1999; Dye    and Jarmain 2004). Dye and Poulter (1995), Prinsloo and Scott (1999), and Dye    and Jarmain (2004) quantified the increases in surface runoff that follow the    clearing of invasive trees and shrubs, which provides support for the assumptions    made in earlier studies. The magnitude of reductions depends on the annual rainfall,    and the invasive alien species concerned. Typical examples of results from plantations    include: an 82% reduction in stream flow in the KwaZulu-Natal Drakensberg 20    years after planting grasslands with pines (Bosch 1979); a 55% reduction in    stream flow in the Western Cape 23 years after planting pines in fynbos (Van    Wyk, 1987); and the total drying up of streams 6 to 12 years after completely    replacing grassland with pines and eucalypts in the Mpumalanga Province (Van    Lill et al., 1980).</font></p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">More recently,    Cullis et al. (2007) calculated that the total loss of usable water due to the    invasion of alien plants in catchments receiving more than 800 mm of rainfall    per year is 695 Mm<sup>3</sup>, 75% of which is due to invasions of riparian    areas by alien plants. Combined with non-riparian invasive alien plants, this    accounts for 4% of the total registered water use in South Africa.</font></p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">Our review revealed    that few studies have quantified the effects of invasions on water quality resulting    from increases in evapotranspiration and, thus, decreases in river flows and    dilution capacity. Most impacts are inferred and are not supported by measured    data. The influence of invasive alien plants on water quality is intimately    linked to site-specific processes, making it difficult to isolate causal factors    (Malan, 2011) Evapotranspiration rates are also site- and season-specific, which    makes it difficult to generalise findings.</font></p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2"><b>Plant biomass,    eutrophication and nutrient cycling</b></font></p>     ]]></body>
<body><![CDATA[<p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">Alien invasive    plants change the amount and structure of biomass, which changes carbon and    nutrient dynamics (<a href="/img/revistas/wsa/v38n2/19t02.jpg">Table 2</a>). Invasive alien plants    typically grow more rapidly, often increasing the proportion of biomass contributed    by alien plants. This includes leaves, bark, seed, flowers and twigs that become    'terrestrial litter' after abscission (Aerts, 1997). Such litter enters and    is retained in water bodies, where its rate of breakdown by invertebrate feeding    as well as fungal and bacterial activity can differ from that of inputs from    indigenous plants (Stewart and Davies, 1990). The often large differences in    litter inputs from invasive alien plants relative to indigenous species can    dramatically alter the nutrient cycle in ecosystems (Stock et al., 1995).</font></p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">Increases in the    biomass contributed by alien plants can increase the amount of metabolised nutrients,    which escalates natural eutrophication processes (Kalff, 2002) as well as free-floating    and rooted aquatic macrophytes invasions (Lee, 1973). Eutrophication leads to    gradual changes in the plant and animal populations, the development of potentially    toxic algal blooms and therefore a slow decline in water and habitat quality    (Kalff, 2002).</font></p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">The level of impact    that litter from invasive alien plants has on nutrient cycles is determined    by vegetative spread, plant structure, phenology, plant water and nutrient uptake    efficiency, photosynthesis type, presence of symbionts and nitrogen fixation,    phosphorus content and tissue chemistry (such as allelopathy) (Ehrenfeld, 2003).</font></p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">Nitrogen fixation,    for example, is a natural process by which nitrogen gas (N<sub>2</sub>) is converted    to biologically-useful ammonia (NH<sub>3</sub>) (McNeill and Unkovich, 2007).    In a symbiotic relationship with bacteria, legumes form nodules on the roots    to fix nitrogen gas which can then be used by either plants or animals (Lindemann    and Glover, 2003). Nitrogen fixation by legumes can be in the range of 2.5-7.4    kg of nitrogen per 1 000 m<sup>2</sup> per year in natural ecosystems, and several    hundred kilograms in a cropping system (Lindemann and Glover, 2003).</font></p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">The majority of    nitrogen-fixing plants are in the flowering legume family Fabaceae, of which    the genus <i>Acacia</i> is the second largest, with over 900 species. Australian    acacias are important invaders of South African fynbos areas in the Western    Cape (Yelenik et al., 2004; Jovanovic et al., 2009). Fynbos areas are generally    nutrient-poor and the invasion by nitrogen-fixing acacias increases nitrogen    input and soil fertil-ity, thus allowing for <i>Acacia</i> species to propagate    and outcom-pete indigenous species (Stock et al., 1995). N-fixation has been    reported for <i>Acacia cyclops</i> (Stock et al., 1995; Virtue and Melland,    2003), <i>A. dealbata</i> (Musil, 1993), <i>A. mearnsii</i> (Musil, 1993) and    <i>A. saligna</i> (Stock et al., 1995).</font></p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">A study of <i>A.    saligna</i> in the Western Cape showed that groundwater in invaded and recently    cleared plots had elevated NO<sub>3</sub><sup>-</sup> and NO<sub>2</sub><sup>-</sup>    concentrations (up to 12 mg/</font><font  size="2">&#8467;</font><font face="Verdana, Arial, Helvetica, sans-serif" size="2">)    compared to groundwater in natural fynbos plots (up to 3.3 mg/</font><font  size="2">&#8467;</font><font face="Verdana, Arial, Helvetica, sans-serif" size="2">)    (Stock et al., 1995; Jovanovic et al., 2009). The presence of <i>A. saligna,</i>    as well as the nutrient leaching that occurred after its removal, resulted in    seasonal nitrogen concentrations that were higher than the water quality targets    for domestic use (NO<sub>x</sub> &lt; 6 mg/</font><font  size="2">&#8467;</font><font face="Verdana, Arial, Helvetica, sans-serif" size="2">)    (Jovanovic et al., 2009; DWAF, 1993). Clearing of <i>A. saligna</i> resulted    in an initial flushing of nitrogen out of the soil, but nitrogen concentrations    normalised after that. The results suggest that removal of the alien plants    would be beneficial from both a water quantity as well as water quality perspective    (Jovanovic et al., 2009).</font></p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">Allelopathy is    the process through which invasive plants such as eucalyptus (Al-Naib and Al-Mousawi,    1976), pines (Durvey et al., 1999), <i>Chromolaena</i> and <i>Lantana</i> (Sheeja,    1993) produce biochemicals that influence the growth, survival and reproduction    of indigenous species. These biochemicals can act as antibiotics in certain    soils, possibly impacting on nitrogen cycles (Couto and Betters, 1995). Phenolics    and volatile compounds can be released from eucalyptus foliage (Al-Naib and    Al-Mousawi, 1976). These may subsequently impact on water quality through soil    erosion or surface runoff processes. These possible impacts of allelochemicals    on water quality have, however, not yet been evaluated.</font></p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">Many South African    alien invaders, for example trees in the genera <i>Acacia</i> and <i>Pinus,</i>    increased the biomass of an invaded area, by either dense overgrowth or excessive    terrestial littering, and therefore add additional nutrients to the system (Van    Wilgen and Richardson, 1985; Versfeld and Van Wilgen, 1986; Ehrenfeld, 2003;    Virtue and Melland, 2003). Alien invasive plants are capable of changing the    soil chemistry by either slow decomposition processes or nitrogen-fixing which,    in turn, is assumed to impact on the water quality (Jovanovic et al., 2009;    Ehrenfeld, 2003), although there is very little supporting evidence of this.    There is a significant gap in our understanding of the changes in soil chemistry,    and the resulting changes in soil and groundwater chemistry and overall water    quality. The impacts of alien invasive biomass on eutrophication processes are    therefore a complex matter, in need of quantified data and extended research.    As the primary nutrient responsible for eutrophication is phosphorus (Lee, 1973),    the nitrogen-fixing and cycling abilities of the alien invaders alone will not    account for their contribution to these processes. Fynbos produces large amounts    of secondary plant compounds, known as polyphenolics, which decompose to form    humic and other weak organic acids (Dallas and Day, 2004). These leaching humic    acids are known to darken the water, decrease the pH and reduce the amount of    phosphorus in water. <i>Berzelia lanuginosa</i> (Bruniaceae) and <i>Elegia thyrsifera</i>    (Restionaceae), a fynbos shrub and reed, respectively, were studied for their    decomposing impacts on soluble reactive phosphorus (SRP), ammonium and polyphenol    concentrations in water (Raubenheimer and Day, 1991). The studied fynbos showed    a linear leached polyphenol concentration in water over time which later complexed    with SRP, reducing the leached amount of biochemically-available phosphate.    For fertiliser applications, humic acid containing manures are frequently added    to soils to increase the biochemically-available amount of phosphorus (Winarso    et al., 2011). The presence of dissolved humic compounds can therefore either    reduce the amount of phosphate or increase the biochemically-available phosphorus    in a given ecosystem (DWAF, 1996b), depending on the pH and available bacteria    (Winarso et al., 2011). Although phosphorus is seldom found in quantity in unpolluted    water (Dallas and Day, 2004), the impact alien invasive plants have on phosphorus    cycling mechanisms and processes will also have to be investigated more closely    to determine their holistic impact on eutrophication processes.</font></p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2"><b>Fire regimes,    soil erosion and water quality</b></font></p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">Plant invasions    can change the structure, biomass (Van Wilgen and Richardson, 1985; Jayiya et    al., 2004) and spatial distribution of plant parts in invaded vegetation (Brooks    et al., 2004), leading to increases in fire intensity (Versfeld and Van Wilgen,    1986; Scott and Van Wyk, 1990). More intense fires generate water-repellent    layers in the soil, leading to increased soil erosion after rains (Smith et    al., 2011). Erosion increases sediment loads in water, affecting its quality.</font></p>     ]]></body>
<body><![CDATA[<p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">Alien plant invasions    influence the fire regime of an invaded area in the following ways (Brooks et    al., 2004; Keeley, 2009):</font></p> <ul>       <li><font face="Verdana, Arial, Helvetica, sans-serif" size="2"><b>Fuel loads.</b>      Invasion of mountain fynbos by pines can increase biomass in fynbos and grasslands      by up to 300% (Versfeld and Van Wilgen, 1986). Studies in South Africa have      assessed a number of alien invasive species in terms of biomass and fire intensity      (Van Wilgen and Richardson, 1985; Jayiya et al., 2004). Invaded areas typically      have greater fuel loads than indigenous vegetation: for example <i>A. cyclops</i>      (317% increase), <i>A. saligna</i> (50% increase), <i>H. sericea</i> (60%      increase) and <i>P. pinaster</i> (743% increase). Increased fuel loads have      also been observed due to the accumulation of slowly decomposing litter from      <i>P. pinaster</i> and <i>P. patula</i> (De Ronde, 1984; Morris, 1995).</font></li>       <li><font face="Verdana, Arial, Helvetica, sans-serif" size="2"><b>Plant tissue      chemistry (flammability and moisture content).</b> <i>Chromolaena odorata</i>      leaves contain essential oils, resulting in flammable foliage leading to fires      that burn with higher intensity compared to indigenous plants (Pammenter et      al., 1985). The moisture content (as percentage of oven-dry weight) of live      foliage differed among invasive alien plants: <i>A. cyclops</i> 120-140%,      <i>A. saligna</i> 270%, <i>H. sericea</i> 110%, <i>P. pinaster</i> 118-175%;      this affects fire risk (Van Wilgen and Richardson, 1985; Jayiya et al., 2004).</font></li>       <li><font face="Verdana, Arial, Helvetica, sans-serif" size="2"><b>Horizontal      and vertical continuity.</b> <i>Acacia cyclops</i> and <i>Pinus pinaster</i>      increased the vertical and horizontal continuity of fuels, facilitating fire      spread (Jayiya et al., 2004). <i>Arundo donax,</i> a reed species that invades      drainage lines, can increase the amount and especially the vertical continuity      of fuel, causing more intense fires and carrying fires into the crowns of      trees (Brooks et al., 2004). <i>Chromolaena</i> carries fires into the canopies      of areas that generally don't burn with very high intensity (Zachariades and      Goodall, 2000).</font></li>     </ul>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">High intensity    fires can lead to the development of water repellency, or 'hydrophobicity' in    soil (Adams et al., 1970; DeBano and Conrad, 1976; DeBano, 1981; Keeley, 2009).    The water-repellent layer is formed as hydrophobic materials (such as resins)    are volatized during fire near the soil surface and then distil downward according    to the temperature gradient within the soil profile. Some 50-95% of the substances    moving from burning litter into sand were recorded as being capable of causing    water repellency (Savage, 1974). Hydrophobicity inhibits water infiltration    and/or percolation and thus increases the proportion of overland flow, accelerating    soil erosion (Scott and Van Wyk, 1992).</font></p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">Soil erosion, caused    by water repellency, increases the sediment load in a water resource. Sediment    transport has been reported to increase up to 1 459 times after fires (Smith    et al., 2011). The sediment loads after fires are also determined by the slope    (9.9 t/ha per year on 15&deg; slope versus 25.9 t/ha per year on 32&deg; slope,    (Scott, 1993)), fuel load, the soil geomorphology and the fire location relative    to the riparian zone and the main channel flow (D.C. Le Maitre, personal observation).    In addition, alien invasive plants typically suppress ground-cover and under-storey    vegetation and the absence of these shallow root systems increases the likelihood    of soil loss after a fire (Scott et al., 1998).</font></p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">The increased rate    of sediment runoff on post-fire ground surfaces impacts on water quality and    is region specific. The sediment runoff increases the turbidity and salinity,    decreases pH (Bayley and Schindler, 1991), elevates water temperature, and increases    nutrient loads (Smith et al., 2011), thereby accelerating eutrophication processes    and temporarily increasing the concentrations of pollutants such as toxic heavy    metals (Gallaher et al., 2002; Crouch et al., 2006; White et al., 2006; Smith    et al., 2011) and the numbers of disease-carrying micro-organisms (Crouch et    al., 2006; Smith et al., 2011; Doerr et al., 2011; Smith et al., 2011).</font></p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">There are several    South African studies that document increased erosion rates after fire events    (<a href="/img/revistas/wsa/v38n2/19t03.jpg">Table 3</a>), confirming international experience    that has also documented negative effects of fire on water quality (in Australia    by Lane et al. (2006), Wilkinson et al. (2009) and Sheridan et al. (2007); in    Canada by Petticrew et al. (2006); in the United States by Reneau et al. (2007)    and Moody and Martin (2009)).</font></p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2"><b>Aquatic alien    plants and water quality</b></font></p>     ]]></body>
<body><![CDATA[<p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">Several alien aquatic    plant species are important invaders of rivers and water bodies in South Africa.    These plants, including <i>Eichhornia crassipes</i> (water hyacinth), <i>Pistia    stratiotes</i> (water lettuce), <i>Salvinia molesta</i> (kariba weed), <i>Myriophyllum    aquaticum</i> (parrot's feather) and <i>Azolla filiculoides</i> (red water fern)    have become relatively widespread, forming dense mats in nutrient-rich aquatic    ecosystems, either as floating weeds or rooted to shallow sediments or river    banks (e.g., parrots feather).</font></p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">Invasions of aquatic    weeds are associated with a range of impacts on water quality (<a href="/img/revistas/wsa/v38n2/19t04.jpg">Table    4</a>). Dense mats of these weeds can impede water flow, which increases the    rate of siltation in water bodies, and inhibit the diffusion of air into water,    resulting in lower concentrations of dissolved oxygen (Raid and Munshi, 1979;    T&eacute;llez et al., 2008). Lower oxygen concentrations, combined with the    increased amounts of organic detritus that collect beneath these floating mats,    can increase sediment accumulation rates and accelerate eutrophication processes.    Increased eutrophication can be lethal to fish, cause algal blooms and render    the water toxic and uninhabitable for native animal and plant species (Pieterse,    1989). Dense mats of floating plants limit light penetration and thereby prevent    the development of planktonic algal blooms, a typical result of eutrophication.    Typical examples were seen with infestations of <i>E. crassipes</i> in Lake    Victoria (Mailu, 2001) and <i>S. molesta</i> in Lake Kariba on the Zambezi River    (Williams and Hecky, 2005). Although the eutrophication of these water bodies    is primarily due to anthropogenic inputs (Mailu, 2001; Williams and Hecky, 2005),    the invasion and rapid spread of aquatic weeds are indicators of declining water    quality through eutrophication (Hill and Olckers, 2001).</font></p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">Invasions by aquatic    weeds have been linked to increases in water-borne, water-based and water-related    diseases. <i>Eichhornia crassipes</i> infestations have been linked to increases    in the gastropod vectors <i>(Biomphalaria</i> and <i>Bulinus)</i> that act as    an intermediate host for schistosomiasis (bilharzia) in Lake Victoria (Okedi,    1990; Masifwa et al., <i>2001). Eichhornia crassipes</i> has also been shown    to adsorb <i>Vibrio cholerae</i> from contaminated water in Bangledesh (Spira    et al., 1981). <i>Salvinia molesta</i> provides habitat for mosquitoes, which    are vectors for diseases such as dengue fever, elephantiasis, encephalitis and    malaria (Oliver, 1993) and <i>S. molesta</i> infestations have assisted in the    spread of these diseases in Sri Lanka. The proliferation of <i>P. stratioides</i>    on Lake Guiers in the River Senegal has accelerated the rapid spread of schistosomiasis,    which affected up to 80% of the population of some lakeside villages (Cogels    et al., 1997). <i>Azolla filiculoides,</i> which is known to be nitrogen-fixing,    has a symbiotic relationship with cyanobacteria, which produce the neurotoxic    non-protein amino acid </font><font  size="2">&#946;</font><font face="Verdana, Arial, Helvetica, sans-serif" size="2">-methylamino-L-alanine    (BMAA). Consumption of BMAA causes serious neurodegenerative disease such as    amyotrophic lateral sclerosis/parkinsonism-dementia complex (AL-SPDC) (Cox et    al., 2003). Biomagnification of BMAA tin the Guam ecosystem, has increased the    incidence of amyotrophic lateral sclerosis in humans 50- to 100-fold (Cox et    al., 2003). Production of known neurotoxins has also been considered phylogenetically    unpredictable. A single neurotoxin, </font><font  size="2">&#946;</font><font face="Verdana, Arial, Helvetica, sans-serif" size="2">-<i>N</i>-methylamino-L-alanine,    may be produced by all known groups of cyanobacteria, including cyanobacterial    symbionts and free-living cyanobacteria. The ubiquity of cyanobacteria in terrestrial,    as well as freshwater, brackish, and marine environments, suggests a potential    for widespread human exposure (Cox et al., 2005).</font></p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">Of the aquatic    weeds reported on here, only <i>A. filiculoides</i> has been reported to exhibit    nitrogen-fixing abilities due to its symbiotic association with cyanobacteria    (Hussner, 2010). Symbiotic relationships between cyanobacteria and <i>S. molesta</i>    and <i>E. crassipes</i> were also observed, but nitrogen-fixation occurred on    a much smaller scale compared to <i>Azolla</i> spp. (Barik et al., 2000). Increases    in cyanobacteria numbers caused by their symbiotic relationship with aquatic    weeds, add to the eutrophication processes in the water resource.</font></p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">Control operations    aimed at reducing the extent of invasive aquatic weed mats can also have an    impact on water quality. Submerged, emergent and floating water plants are often    controlled using a variety of herbicides such as diquat, glypho-sate, amitrole    and the amine and acid formulations of 2,4-D (Williams and Hecky, 2005). This    exposes humans, fish and livestock to potentially toxic chemicals in their drinking    water (Williams and Hecky, 2005). Uncleared, dead or decaying weed soon turns    into rotting biomass that can lead to localised de-oxygenation, contributing    to eutrophication and other detrimental impacts upon the water body (Mallya,    1999). Decaying biomass may also result in the water having an unpleasant taste    and odour (Jones, 2001).</font></p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">In general, a dramatic    reduction in the concentration of dissolved oxygen is observed and slightly    more acidic conditions are expected for all of the aquatic invasions reviewed    (see <a href="/img/revistas/wsa/v38n2/19t04.jpg">Table 4</a>). The 5 invasive aquatic plant species    investigated in this study extract phosphate, nitrogen and various heavy metals    from water, to various degrees. It is due to this uptake capability of aquatic    weeds that many reports and evaluations suggest their possible use in the removal    of toxic heavy metals from mining wastewater (Mishra and Tripathia, 2008). The    benefits of heavy metal extraction by the weeds have, however, not yet been    exploited to balance their negative impact on water quality.</font></p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">The available literature    suggests that <i>E. crassipes</i> has the greatest impact on water quality,    of the 5 species. It has the highest rate of nutrient uptake, causes significant    reductions in dissolved oxygen, and has a high water transpiration rate (Lallana    et al., 1987) (which leads to a decreased dilution effect). This species is    not yet entirely under any form of control (Coetzee et al. 2011) in South Africa    and is likely to continue to have significant impacts on water quality.</font></p>     <p>&nbsp;</p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="3"><b>Discussion</b></font></p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">In general, South    Africa is a water-scarce country and almost all of its accessible freshwater    has already been allocated for use (of which agriculture, industry and mining    are the largest users) (DWA, 2010). The shortage of available water is exacerbated    by water quality problems at a national scale. These include unacceptably high    nutrient concentrations at 71% of the country's monitoring sites, as well as    30% of monitoring sites having unacceptably high levels of salinisation (DWA,    2011). Situations such as these are caused by poorly functioning wastewater    treatment works, run-off from unserviced areas, agricultural runoff, industrial    wastewater discharges and mining impacts (Scott, 1995; Burger and Nel, 2008;    DWA, 2011). Against this backdrop of a looming water quality crisis and the    growing scarcity of water, the water quality impacts of alien invasive plants    are likely to be minor. Nonetheless, they worsen an already dire situation;    in addition, eutrophication promotes invasion by aquatic weeds, initiating a    downward spiral of invasion and decreasing water quality.</font></p>     ]]></body>
<body><![CDATA[<p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">Aquatic weeds have    flourished in certain South African water resources which have been nutrient    enriched by ineffective municipal treatment plants and sewage effluent (Van    Ginkel, 2011). In these areas alien invasive plants may result in further deterioration    and exceedance of fitness-for-use thresholds. Aquatic weed invasions in Lakes    Kariba and Victoria (Ashton and Mitchell, 1989; Hill, 1999b) are examples where    waters were being enriched with nutrients by sewage pollution, which created    ideal conditions for the spread of water hyacinth and Kariba weed. These infestations    further reduced the water quality, inhibited water transport and became a breeding    ground for waterborne pathogens. A good example of the impact of invading plant    biomass-related impacts on water quality is the invasion of the Western Cape    fynbos by <i>Acacia saligna,</i> which increased nitrate and nitrite concentrations    beyond acceptable water quality thresholds (DWAF, 1993; Jovanovic et al., 2009).    Furthermore, the impacts of allellopathy, recorded in species such as <i>Lantana    camara,</i> and species of <i>Prosopis</i> and <i>Eucalyptus,</i> on water quality    have not been adequately investigated. It is conceivable that the phenol-containing    terrestrial litter of <i>Eucalyptus</i> species could affect water quality in    terms of acidity, organic matter accumulation and nitrification processes, but    this has not yet been substantiated by quantitative data. The implications of    alien invasive leaf litter decomposition, from species such as <i>Eucalyptus</i>    and <i>Quercus,</i> on nutrient dynamics, and the subsequent impacts on water    quality, are also yet to be determined.</font></p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">The impacts of    invasive alien plants on water quality, while not considered to be as important    as those on water quantity, should also be addressed, particularly in areas    where the impacts may worsen already serious water quality problems. This review    provides a starting point for the identification of some of these impacts, but    it is clear that much research still needs to be carried out if a defensible    assessment of the magnitude of the problem is to be made. In the interim, and    with some exceptions in limited areas, it is likely that the priorities for    clearing invasive alien plants will be dictated by their impacts on water quantity,    both in terms of streamflow discharge and groundwater recharge. Prioritised    impacts not reflecting on water quantity effects include areas with high levels    of erosion following severe fires in invaded stands in fynbos, nitrogen pollution    problems in aquifers where nitrogen-fixing <i>Acacia</i> species have invaded,    and water bodies (particularly impoundments) where aquatic weeds have become    dominant.</font></p>     <p>&nbsp;</p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="3"><b>Acknowledgements</b></font></p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">We thank the Working    for Water programme for funding this review, and Dr H. Malan for useful comments    on an earlier draft.</font></p>     <p>&nbsp;</p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="3"><b>References</b></font></p>     <!-- ref --><p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">ADAMS S, STRAIN    BR and ADAMS MS (1970) Water-repellent soils, fire and annual plant cover in    a desert scrub community of Southeastern California. <i>Ecology</i> <b>51</b>    (4) 696-700.</font>&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;[&#160;<a href="javascript:void(0);" onclick="javascript: window.open('/scielo.php?script=sci_nlinks&ref=908524&pid=S1816-7950201200020001900001&lng=','','width=640,height=500,resizable=yes,scrollbars=1,menubar=yes,');">Links</a>&#160;]<!-- end-ref --><!-- ref --><p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">AERTS R (1997)    Climate, leaf litter chemistry and leaf litter decomposition in terrestrial    ecosystems: a triangular relationship. <i>Oikos</i> <b>79</b> 439-449.</font>&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;[&#160;<a href="javascript:void(0);" onclick="javascript: window.open('/scielo.php?script=sci_nlinks&ref=908525&pid=S1816-7950201200020001900002&lng=','','width=640,height=500,resizable=yes,scrollbars=1,menubar=yes,');">Links</a>&#160;]<!-- end-ref --><!-- ref --><p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">AL-NAIB FAG and    AL-MOUSAWI AH (1976) Allelopathic effects of <i>Eucalyptus microtheca.</i> Identification    and characterization on the phenolic compounds in <i>Eucalyptus microtheca.    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Ecol.</i> <b>12</b> (1) 44-51.</font>&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;[&#160;<a href="javascript:void(0);" onclick="javascript: window.open('/scielo.php?script=sci_nlinks&ref=908692&pid=S1816-7950201200020001900169&lng=','','width=640,height=500,resizable=yes,scrollbars=1,menubar=yes,');">Links</a>&#160;]<!-- end-ref --><!-- ref --><p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">ZACHARIADES C and    GOODALL JM (2000) Distribution, impact and management of <i>Chromolaena odorata</i>    in Southern Africa. <i>Proc. Fifth International Workshop on Biological Control    and Management of</i> Chromolaena odorata, 23-25 October 2000, Durban, South    Africa.</font>&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;[&#160;<a href="javascript:void(0);" onclick="javascript: window.open('/scielo.php?script=sci_nlinks&ref=908693&pid=S1816-7950201200020001900170&lng=','','width=640,height=500,resizable=yes,scrollbars=1,menubar=yes,');">Links</a>&#160;]<!-- end-ref --><p>&nbsp;</p>     <p>&nbsp;</p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2">Received 10 October    2011;    ]]></body>
<body><![CDATA[<br>   Accepted in revised form 18 April 2012.</font></p>     <p>&nbsp;</p>     <p>&nbsp;</p>     <p><font face="Verdana, Arial, Helvetica, sans-serif" size="2"><a name="back"></a><a href="#top">*</a>    To whom all correspondence should be addressed. +27 21 888 2553; fax: +27 21    888 2862; E-mail: <a href="mailto:jchamier@csir.co.za">jchamier@csir.co.za</a></font></p>      ]]></body>
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