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                <term xml:lang="en">MORPHOGENESE</term>
                <term xml:lang="en">TALL FESCUE</term>
                <term xml:lang="en">PHOTOSYNTHESIS</term>
                <term xml:lang="en">PHOTOMORPHOGENESIS</term>
                <term xml:lang="en">LIGHT</term>
                <term xml:lang="en">LEAF GROWTH</term>
                <term xml:lang="fr">CROISSANCE DES FEUILLES</term>
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              <classCode scheme="vocinrae-old" n="croissance végétale">croissance végétale</classCode>
              <classCode scheme="vocinrae-old" n="dioxyde de carbone">dioxyde de carbone</classCode>
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              <p>Light quality and, in particular, its content of blue light is involved in plant functioning and morphogenesis. Blue light variation frequently occurs within a stand as shaded zones are characterized by a simultaneous decrease of PAR and blue light levels which both affect plant functioning, for example, gas exchange. However, little is known about the effects of low blue light itself on gas exchange. The aims of the present study were (i) to characterize stomatal behaviour in Festuca arundinacea leaves through leaf gas exchange measurements in response to a sudden reduction in blue light, and (ii) to test the putative role of Ci on blue light gas exchange responses. An infrared gas analyser (IRGA) was used with light transmission filters to study stomatal conductance (gs), transpiration (Tr), assimilation (A), and intercellular concentration of CO(2) (Ci) responses to blueless PAR (1.80 mu mol m(-2) s(-1)). The results were compared with those obtained under a neutral filter supplying a similar photosynthetic efficiency to the blueless PAR filter. It was shown that the reduction of blue light triggered a drastic and instantaneous decrease of gs by 43.2% and of Tr by 40.0%, but a gradual stomatal reopening began 20 min after the start of the low blue light treatment, thus leading to new steady-states. This new stomatal equilibrium was supposed to be related to Ci. The results were confirmed in more developed plants although they exhibited delayed and less marked responses. It is concluded that stomatal responses to blue light could play a key role in photomorphogenetic mechanisms through their effect on transpiration.</p>
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