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大气CO_(2)浓度升高对干旱条件下冬小麦叶片光合适应的影响 被引量:5
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作者 宗毓铮 杨琦 +4 位作者 常翠翠 勾俊英 张东升 郝兴宇 高志强 《应用生态学报》 CAS CSCD 北大核心 2021年第12期4370-4380,共11页
大气CO_(2)浓度升高是全球气候变化的主要特征,但大气CO_(2)浓度长期升高条件下冬小麦叶片发生光合适应的机制尚不十分清楚。本研究以盆栽冬小麦‘郑麦9023’为试验材料,在人工气候控制室内设置2个CO_(2)浓度(400和600μmol·mol^(-... 大气CO_(2)浓度升高是全球气候变化的主要特征,但大气CO_(2)浓度长期升高条件下冬小麦叶片发生光合适应的机制尚不十分清楚。本研究以盆栽冬小麦‘郑麦9023’为试验材料,在人工气候控制室内设置2个CO_(2)浓度(400和600μmol·mol^(-1))、2个水分条件(田间持水量的80%±5%和55%±5%),测定拔节期和抽穗期的光合特征曲线、叶绿素荧光动力学参数、叶氮含量和收获后的籽粒产量等指标,探讨干旱条件下库源关系改变对叶片光合适应的影响。结果表明:在小麦拔节期,干旱条件下CO_(2)浓度升高处理的小麦PSⅡ实际光化学效率没有显著增加,但通过提升最大电子传递速率和电子向光化学方向的传递比例,增强了Rubisco的羧化速率,从而提高了最大净光合速率;在抽穗期,功能叶最大电子传递速率和电子向光化学方向的传递比例虽然较高,但PSⅡ实际光化学转换效率降低,Rubisco羧化速率和丙糖磷酸利用效率下降,以致最大净光合速率降低。干旱条件下,CO_(2)浓度升高增加了小麦单茎生物量、单穗粒数和穗粒重,降低了不孕小穗数,提高了籽粒产量。土壤干旱条件下,CO_(2)浓度升高对收获期小麦单茎籽粒产量的促进作用可能主要来自于生长前期的光合产物积累。生长后期光合适应发生的主要原因是功能叶PSⅡ实际光化学转换效率和丙糖磷酸利用效率的降低,而不是最大电子传递速率、光化学方向的电子传递比例和新叶库强的变化。 展开更多
关键词 CO_(2)浓度升高 干旱胁迫 光合能量分配 冬小麦
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High-nitrogen and low-irradiance can restrict energy utilization in photosynthesis of successional tree species in low subtropical forest
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作者 CAI Xi’An,SUN GuChou,ZHAO Ping &LIU XiaoJing South China Institute of Botany,Chinese Academy of Sciences,Guangzhou 510650,China 《Science China(Life Sciences)》 SCIE CAS 2008年第7期592-603,共12页
Responses of photosynthesis and the partition of energy utilization to high-nitrogen importation and high-light intensity in leaves of three dominant tree species of subtropical forest,including sun plant or early-suc... Responses of photosynthesis and the partition of energy utilization to high-nitrogen importation and high-light intensity in leaves of three dominant tree species of subtropical forest,including sun plant or early-successional species Schima superba,mesophyte or intermediate-successional species Canstanopsis hystrix,and shading-tolerant plant or late-successional species Cryptocarya concinna were studied by using the CO2 exchange system and chlorophyll fluorescence method.Our results showed that,regardless of plant species,net photosynthetic rate(Pn)was higher in high-nitrogen supply and high irradiance(HNHL)plants than in low-nitrogen supply and high irradiance(LNHL)plants,implying that low-nitrogen importation would limit Pn of plants grown under high irradiance.However, high-nitrogen supply and low irradiance(HNLL)plants had a lower Pn.Insignificant change of quantum yield(Fv′/Fm′)in opened PS II was found in leaves of HNHL,LNHL or HNLL plants of S.superba and C. hystrix,while a higher Fv′/Fm′occurred in HNHL plants of C.concinna in comparison with LNHL or HNLL plants.The HNHL plants of C.concinna also had a higher photochemical quantum yield(△F/Fm′) than LNHL or HNLL plants,however no similar responses were found in plants of S.superba and C. hystrix(P<0.05).In the irradiance range of 0―2000μmol photon·m -2·s -1,the fraction of energy consumed by photochemistry(φ PSII )was 18.2%in LNHL plants of S.superba which was higher than that in HNHL plants(P>0.05)and it was significantly higher than in HNLL plants(P<0.05).C.hystrix also had a similar response inφ PSII to nitrogen supply and irradiance.Regardless of species HNLL plants had a significantφ PSII and higher heat dissipation in light,and this effect was more severe in C.concinna than in S.superba or C.hystrix.The results may mean that high-nitrogen importation by nitrogen deposit and low irradiance caused by changing climate or air pollution would more severely restrict photosynthetic processes in the late-successional species C.concinna 展开更多
关键词 LOW SUBTROPICAL forest successional plant high NITROGEN concentration partition of photosynthetic energy
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高大气CO_2浓度下氮素对小麦叶片光合能量分配的调节 被引量:3
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作者 张绪成 于显枫 +1 位作者 王红丽 马一凡 《作物学报》 CAS CSCD 北大核心 2011年第6期1069-1076,共8页
探讨了施氮量对高大气CO2浓度下小麦功能叶光合能量传递与分配的影响,进而明确氮素对小麦叶片光合作用适应性下调的能量分配调节作用。采用开顶式气室盆栽法,通过测定小麦拔节期和抽穗期不同大气CO2浓度和施氮水平下的叶氮浓度、光合速... 探讨了施氮量对高大气CO2浓度下小麦功能叶光合能量传递与分配的影响,进而明确氮素对小麦叶片光合作用适应性下调的能量分配调节作用。采用开顶式气室盆栽法,通过测定小麦拔节期和抽穗期不同大气CO2浓度和施氮水平下的叶氮浓度、光合速率-胞间CO2浓度(Pn-Ci)响应曲线和荧光动力学参数,测算光合电子传递速率和分配去向。与在正常CO2浓度(400μmol mol-1)条件下相比,在高大气CO2浓度(760μmol mol-1)下,小麦叶氮浓度显著下降,N200处理(200mg kg-1)叶片抽穗期叶氮浓度的下降幅度较拔节期高335.7%。N200处理较N0处理(0mg kg-1)提高小麦叶片光适应下PSⅡ反应中心最大量子产额(Fv′/Fm′)、光化学效率(ΦPSⅡ)和开放比例(qP),降低非光化学猝灭系数(NPQ)。高大气CO2浓度下,小麦叶片光化学反应的非环式光合电子传递速率(Jc)和Rubisco羧化速率(Vc)显著升高,而光呼吸的非环式光合电子传递速率(Jo)和Rubisco氧化速率(Vo)明显降低;施氮使Jc、Jo、Vc和Vo值均呈上升趋势,而且Jc和Vc达到显著差异。高大气CO2浓度下Jo/Jc和Vo/Vc显著降低,施氮后小麦拔节期叶片Jo/Jc和Vo/Vc降低,但抽穗期Jo/Jc升高而Vo/Vc无明显变化。叶氮浓度与小麦叶片Jc、Jo和Vo均呈显著线性正相关,而且高大气CO2浓度下小麦叶片Jc、Jo和Vo对氮浓度的敏感性降低。高大气CO2浓度下,小麦叶片PSⅡ反应中心开放比例增加,非光化学耗能降低,更多的光合电子进入光化学过程;施氮后使小麦叶氮浓度增加,提高光合能力,改变了能量分配,这是高氮条件下光合作用适应性下调被缓解的一个关键因素。 展开更多
关键词 大气CO2浓度增高 施氮量 光合电子传递速率 光能分配 小麦
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