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<mods ID="phs-201901-0017">
	<titleInfo><title>Photosynthesis and biomass accumulation in Carapa surinamensis (Meliaceae) in response to water stress at ambient and elevated CO&lt;sub&gt;2&lt;/sub&gt;</title></titleInfo>
	<name type="personal">
		<namePart type="family">OLIVEIRA</namePart>
		<namePart type="given">M.F.</namePart>
		<role><roleTerm type="text">author</roleTerm></role>
	</name>
	<name type="personal">
		<namePart type="family">MARENCO</namePart>
		<namePart type="given">R.A.</namePart>
		<role><roleTerm type="text">author</roleTerm></role>
	</name>
	<typeOfResource>text</typeOfResource>
	<genre>journal article</genre>
	<originInfo><dateIssued>2019</dateIssued></originInfo>
	<language></language>
	<abstract lang="English">Climate models predict an increase in atmospheric CO&lt;sub&gt;2&lt;/sub&gt; concentration and prolonged droughts in some parts of the Amazon, but the effect of elevated CO&lt;sub&gt;2&lt;/sub&gt; is still unknown. Two experiments (ambient CO&lt;sub&gt;2&lt;/sub&gt; ‒ 400 ppm and elevated CO&lt;sub&gt;2&lt;/sub&gt; ‒ 700 ppm) were conducted to assess the effect of drought (soil at 50% field capacity) on physiological parameters of Carapa. At ambient CO&lt;sub&gt;2&lt;/sub&gt; concentration, light-saturated net photosynthetic rate (P&lt;sub&gt;Nsat&lt;/sub&gt;) was reduced by 33.5% and stomatal conductance (g&lt;sub&gt;s&lt;/sub&gt;) by 46.4% under drought, but the effect of drought on P&lt;sub&gt;Nsat&lt;/sub&gt; and g&lt;sub&gt;s&lt;/sub&gt; was nullified at elevated CO&lt;sub&gt;2&lt;/sub&gt;. Total plant biomass and leaf area production were also reduced (42‒47%) by drought. By changing leaf traits, Carapa is able to endure drought, as the consumptive use of water was reduced under drought (32‒40%). The improvement of P&lt;sub&gt;Nsat&lt;/sub&gt; under elevated CO&lt;sub&gt;2&lt;/sub&gt; and water stress and the leaf plasticity of Carapa broaden our understanding of the physiology of Amazonian trees.</abstract>
	<subject><topic></topic></subject>
	<identifier type="doi">10.32615/ps.2019.023</identifier>
	<identifier type="uri">https://ps.ueb.cas.cz/artkey/phs-201901-0017.php</identifier>
	<location><url>https://ps.ueb.cas.cz/artkey/phs-201901-0017.php</url></location>
	<relatedItem type="host">
		<titleInfo><title>Photosynthetica</title></titleInfo>
		<originInfo><issuance>continuing</issuance></originInfo>
		<part>
			<detail type="volume"><number>57</number></detail>
			<detail type="issue"><number>1</number></detail>
			<extent unit="pages">
				<start>137</start>
				<end>146</end>
			</extent>
			<date>2019</date>
		</part>
		<identifier type="issn">03003604</identifier>
		<genre authority="marc">periodical</genre>
		<genre>academic journal</genre>
	</relatedItem>
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