首页|期刊导航|植物营养与肥料学报|氮钾配施提高夏玉米光合能力的途径

氮钾配施提高夏玉米光合能力的途径OA

Ways of combined application of nitrogen and potassium fertilizers to enhance the photosynthetic capacity of summer maize

中文摘要英文摘要

[目的]氮钾肥配施是提高华北地区夏玉米养分平衡供给,增强光合作用效率和夏玉米产能的重要措施.本研究旨在分析氮钾配施对夏玉米各生育期叶片叶绿体形态结构及光合酶活性的调控效应.[方法]田间试验在河南省沁阳市进行,试验采用氮钾双因素完全随机区组设计,设置 4 个氮肥水平(N 0、90、180、270 kg/hm2,记为N0、N90、N180、N270)和 3 个钾肥水平(K2O 0、60、120 kg/hm2,记为K0、K60、K120),共 12 个处理.测定了夏玉米各时期养分吸收量,大喇叭口期和灌浆期叶片光合作用参数、冠层温度、叶绿体形貌结构及光合酶活性,以及成熟期产量,并计算了光合氮、钾利用效率(PNUE、PKUE)和肥料利用率.[结果]与N0K0 相比,氮钾配施后夏玉米产量提高 55.6%,各时期地上部氮、钾积累量分别提升 105.1%和100.1%,显著高于单施氮肥或单施钾肥处理,且氮钾配施处理叶绿素含量、叶面积指数、生物量、PNUE和PKUE分别平均提高 20.0%~25.1%、40.6%~81.6%、94.3%~112.7%、39.2%~95.1%和 54.0%~102.3%,冠层温度呈降低趋势.与单施钾肥、氮肥处理相比,氮钾配施处理夏玉米叶片厚度平均提高 10.4%~16.1%、3.9%~13.0%,与其他处理相比,N180K60 处理的叶肉细胞叶绿体贴合细胞壁均匀分布,叶绿体基质和基粒片层分布清晰.氮钾配施处理叶片光合速率及光合酶活性显著升高,夏玉米叶片净光合速率、胞间二氧化碳浓度、蒸腾速率、气孔导度(Pn、Ci、Tr、Gs)分别较单施钾处理增加 18.3%~19.3%、14.6%~15.2%、18.0%~20.3%、31.7%~52.5%,分别较单施氮处理增加了 17.1%~27.6%、12.3%~45.1%、14.6%~36.1%、32.1%~97.2%,光系统Ⅱ(PSⅡ)最大光化学效率(Fv/Fm)、实际光化学效率(ΦPSⅡ)、光化学猝灭系数(qP)和电子传递速率(ETR)均明显升高,而非光化学猝灭系数(NPQ)降低,且钾肥施用对表观量子效率(AQE)、光补偿点(LCP)和光饱和点(LSP)的提升效果更为显著,而氮肥施用对最大净光合速率(Pnmax)的促进作用优于钾肥.此外,氮钾配施处理在大喇叭口期和灌浆期的 1,5-二磷酸核酮糖羧化酶/加氧酶(RuBisCO)、腺苷二磷酸葡萄糖焦磷酸化酶(AGPase)和蔗糖磷酸合成酶(SPS)活性较单施钾处理分别提高 21.6%~41.3%、27.7%~28.5%和 11.6%~19.4%,较单施氮处理分别提高 16.2%~34.0%、12.9%~17.5%和 11.3%~16.8%,促进了叶片碳固定及同化,保障光合速率高效进行.[结论]氮肥可促进夏玉米叶片生长和叶绿素的构建,钾肥通过优化CO2 供应,增强光化学猝灭机制,促进光合产物运输,提升了叶片利用最大光强的能力,提高了光饱和点.二者均可增加叶片厚度、叶面积,降低冠层温度,增强光合酶(RuBisCO、AGPase、SPS)活性,提高光合氮、光合钾利用效率(PNUE、PKUE),保障光系统Ⅱ正常运行,降低光能耗散.适宜的氮钾配比效果更为稳定和显著,进而获得更高的产量.本试验条件下,夏玉米推荐施氮量为N 180 kg/hm2,施钾量为K2O 120 kg/hm2.

[Objectives]Combined nitrogen(N)and potassium(K)fertilization is a crucial nutrient management strategy for ensuring balanced nutrient supply,and enhancing photosynthetic efficiency and crop yield of summer maize in North China.We studied the effects of N and K co-application on leaf photosynthesis,light and temperature utilization,chloroplast structure,and photosynthetic enzyme activity during growth stages of summer maize.[Methods]A field experiment was conducted in Qinyang City,Henan Province,China,using a completely randomized block design with a two-factor(nitrogen and potassium)arrangement.The experiment comprised four nitrogen levels(N 0,90,180,and 270 kg/hm2,denoted as N0,N90,N180,and N270)and three potassium levels(K2O 0,60,and 120 kg/hm2,denoted as K0,K60,and K120),resulting in 12 treatment combinations.Measurements included nutrient uptake at various growth stages of summer maize,photosynthetic parameters and canopy temperature at the large trumpet and grain-filling stages,chloroplast ultrastructure,and photosynthetic enzyme activities,as well as grain yield at maturity.Photosynthetic nitrogen use efficiency(PNUE),photosynthetic potassium use efficiency(PKUE),and fertilizer use efficiency were subsequently calculated.[Results]Compared with the N0K0 treatment,combined N and K application increased summer maize yield by 55.6%,with average increases in aboveground N and K accumulation of 105.1%and 100.1%,respectively.These values were also significantly higher than those under single N or K application treatments.The NK co-application treatments increased chlorophyll content,leaf area index,plant biomass,PNUE,and PKUE by 20.0%-25.1%,40.6%-81.6%,94.3%-112.7%,39.2%-95.1%,and 54.0%-102.3%,respectively,and the canopy temperature showed a decreasing trend.Compared with single K or N application,NK co-application increased leaf thickness by 10.4%-16.1%and 3.9%-13.0%,respectively.In the N180K60 treatment,mesophyll chloroplasts were uniformly distributed along the cell walls,with clearly visible stroma and thylakoid lamellae.Combined N and K application significantly enhanced leaf photosynthetic rate and photosynthetic enzyme activity.Compared with K-only application,N addition increased net photosynthetic rate(Pn),intercellular CO2 concentration(Ci),transpiration rate(Tr),and stomatal conductance(Gs)by 18.3%-19.3%,14.6%-15.2%,18.0%-20.3%,and 31.7%-52.5%,respectively.Compared with N-only application,K addition increased these parameters by 17.1%-27.6%,12.3%-45.1%,14.6%-36.1%,and 32.1%-97.2%,respectively.Photosystem Ⅱ parameters maximum quantum yield of PSⅡ photochemistry(Fv/Fm),actual(effective)quantum yield of PSⅡphotochemistry(ΦPSⅡ),photochemical quenching coefficient(qP,),and electron transport rate(ETR)were significantly increased,while the non-photochemical quenching coefficient(NPQ)decreased.Potassium application had a stronger effect on improving apparent quantum efficiency,light compensation point,and light saturation point(AQE,LCP,and LSP),whereas nitrogen application was more effective in increasing maximum net photosynthetic rate(Pnmax).Additionally,the NK co-application significantly enhanced the activities of ribulose-1,5-bisphosphate carboxylase/oxygenase,ADP-glucose pyrophosphorylase,and sucrose phosphate synthase(RuBisCO,AGPase,and SPS),promoting carbon fixation and assimilation.The NK co-application increased the activities of RuBisCO,AGPase,and SPS by 21.6%-41.3%,27.7%-28.5%,and 11.6%-19.4%,respectively,compared with K-only application.Nitrogen addition increased these enzyme activities by 16.2%-34.0%,12.9%-17.5%,and 11.3%-16.8%,respectively,compared with K-only treatments.[Conclusions]Nitrogen fertilizer promoted maize leaf growth and chlorophyll synthesis,while potassium fertilizer enhanced CO2 supply,strengthened photochemical quenching,facilitated photosynthetic product transport,increased maximum light utilization capacity,and raised the light saturation point.Both fertilizers increased leaf thickness and area,reduced canopy temperature,enhanced the activities of RuBisCO,AGPase,and SPS,improved PNUE and PKUE,ensured normal photosystem Ⅱ function,and reduced light energy dissipation.An appropriate N:K ratio provided more stable and significant effects,thereby achieving higher yields.Under the experimental conditions,the recommended application rates for summer maize are N 180 kg/hm2 and K2O 120 kg/hm2.

李梦;冯义晨;王明花;王鸣腾;徐春燕;蔡迦铭;王宜伦;张顺涛;李岚涛

河南农业大学资源与环境学院/小麦玉米两熟高效生产全国重点实验室,河南 郑州 450046河南农业大学资源与环境学院/小麦玉米两熟高效生产全国重点实验室,河南 郑州 450046河南农业大学资源与环境学院/小麦玉米两熟高效生产全国重点实验室,河南 郑州 450046河南农业大学资源与环境学院/小麦玉米两熟高效生产全国重点实验室,河南 郑州 450046河南农业大学资源与环境学院/小麦玉米两熟高效生产全国重点实验室,河南 郑州 450046河南农业大学资源与环境学院/小麦玉米两熟高效生产全国重点实验室,河南 郑州 450046河南农业大学资源与环境学院/小麦玉米两熟高效生产全国重点实验室,河南 郑州 450046河南农业大学资源与环境学院/小麦玉米两熟高效生产全国重点实验室,河南 郑州 450046河南农业大学资源与环境学院/小麦玉米两熟高效生产全国重点实验室,河南 郑州 450046

夏玉米氮钾配施光合速率光合酶活性叶绿体结构叶片结构光合养分利用率

summer maizecombined application of nitrogen and potassiumphotosynthetic ratephotosynthetic enzyme activitychloroplast structureleaf structurephotosynthetic nutrient use efficiency

《植物营养与肥料学报》 2026 (7)

1470-1489,20

河南省自然科学基金项目(252300423055)河南省高校科技创新人才支持计划项目(26HASTIT019)河南省本科高校青年骨干教师培养计划项目(2024GGJS027).

10.11674/zwyf.2025480

评论