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作物学报 ›› 2023, Vol. 49 ›› Issue (1): 286-294.doi: 10.3724/SP.J.1006.2023.11118

• 研究简报 • 上一篇    

不同小麦品种旗叶叶绿素含量、叶片显微结构及产量对花后遮光的响应机制

李秀(), 李刘龙, 李慕嵘, 尹立俊, 王小燕()   

  1. 长江大学农学院 / 湿地生态与农业利用教育部工程研究中心 / 涝渍灾害与湿地农业湖北省重点实验室, 湖北荆州 434025
  • 收稿日期:2021-12-31 接受日期:2022-05-05 出版日期:2023-01-12 网络出版日期:2022-05-16
  • 通讯作者: 王小燕
  • 作者简介:E-mail: m13797324054@163.com
  • 基金资助:
    国家自然科学基金项目(31871578);国家重点研发计划项目(2016YFD0300107);湿地生态与农业利用教育部工程研究中心资助

Effects of shading postanthesis on flag leaf chlorophyll content, leaf microstructure and yield of different wheat varieties

LI Xiu(), LI Liu-Long, LI Mu-Rong, YIN Li-Jun, WANG Xiao-Yan()   

  1. Agricultural College of Yangtze University / Hubei Collaborative Innovation Center for Grain Industry / Hubei Key Laboratory of Waterlogging Disaster and Agricultural Use of Wetland, Jingzhou 434025, Hubei, China
  • Received:2021-12-31 Accepted:2022-05-05 Published:2023-01-12 Published online:2022-05-16
  • Contact: WANG Xiao-Yan
  • Supported by:
    National Natural Science Foundation of China(31871578);National Key Research and Development Program of China(2016YFD0300107);Engineering Research Center of the Ministry of Education for Wetland Ecology and Agricultural Utilization

摘要:

开花期至成熟期弱光是小麦生产中的环境胁迫之一, 本研究以江汉平原大面积推广品种郑麦9023、襄麦55、扬麦158和扶麦1228为试验材料, 研究弱光对小麦产量的影响及其适应机制。自开花期至成熟期进行遮光(AS), 并以不遮光处理为对照(CK), 测定了旗叶叶绿素含量、叶绿素a/b和叶片显微结构, 以及耐弱光指标—超氧化物歧化酶活性、干物质量和产量等指标。结果表明, 与对照相比, 花后遮光导致各品种小麦旗叶SPAD值、超氧化物歧化酶活性、叶绿素a含量及叶绿素b含量升高, 栅栏组织海绵组织厚度、叶片结构紧密度、干物质积累量和产量降低。不同小麦品种对花后弱光的响应表现不同, 襄麦55和扬麦158旗叶叶肉细胞形态和分布受影响小于郑麦9023和扶麦1228。与郑麦9023和扶麦1228相比, 襄麦55和扬麦158旗叶SPAD值、叶绿素a含量、叶绿素b含量和超氧化物歧化酶活性增幅较大, 叶绿素a/b降幅较大。遮光处理下襄麦55 (29%)和扬麦158 (34%)减产幅度小于郑麦9023 (38%)和扶麦1228 (47%), 表明襄麦55和扬麦158能够保持较高的产量, 对弱光环境具有较高的适应性。能够保持较高的旗叶生理活性是襄麦55和扬麦158在光照不足环境下生产力高于郑麦9023、扶麦1228的生理基础。

关键词: 小麦, 花后遮光, 叶片显微结构, 产量

Abstract:

Low light from flowering to maturity is one of the environmental stresses in wheat production. In this study, four commercial varieties, Zhengmai 9023, Xiangmai 55, Yangmai 158, and Fumai 1228 from Jianghan Plain, were used to investigate the influence of low light on wheat yield and the mechanisms of plants’ adaptation to low light. Shading (AS) treatments were started from flowering till maturity with normal light treatment as the control (CK). Traits monitored from flowering to maturity included chlorophyll contents, chlorophyll a/b and leaf microstructure in flag leaves, and low-light tolerance indicators of superoxide dismutase enzyme activity, dry matter, and yield. Results showed that compared with controls, shading postanthesis resulted in increasing SPAD value of flag leaf, superoxide dismutase (SOD) activity, chlorophyll a and chlorophyll b contents, decreased palisade tissue thickness of spongy tissue, tightness of leaf tissue structure, dry matter accumulation, and grain yield of all varieties. Varieties revealed different responses to low light treatment with the morphology and distribution of mesophyll cells of the flag leaf of Xiangmai 55 and Yangmai 158 being less affected than Zhengmai 9023 and Fumai 1228. Compared with Zhengmai 9023 and Fumai 1228, the SPAD value, chlorophyll a content, chlorophyll b contents, and superoxide dismutase activity of flag leaves of Xiangmai 55 and Yangmai 158 increased significantly, while the chlorophyll a/b decreased significantly. Shading treatment caused yield reductions were much less in Xiangmai 55 (29%) and Yangmai 158 (34%) than Zhengmai 9023 (38%) and Fumai 1228 (47%), indicating that Xiangmai 55 and Yangmai 158 were capable of maintaining high productivity resulted in a high level of adaptability to low-light environments. The ability to maintain a higher physiological activity of flag leaf was the major physiological mechnism for higher productivity of wheat under insufficient light conditions.

Key words: wheat, shading postanthesis, leaf microstructure, yield

表1

不同小麦品种关键物候期对应时间"

年度
Year
品种
Variety
播种日期
Sowing date
开花日期
Anthesis date
成熟日期
Maturity date
遮光时期
Shading period
2018-2019 ZM 9023 2018/10/31 2019/4/14 2019/5/19 2019/4/12-2019/5/20
FM 1228 2019/4/14 2019/5/19
YM 158 2019/4/12 2019/5/19
XM 55 2019/4/12 2019/5/21
2020-2021 ZM 9023 2020/10/28 2021/3/25 2021/5/13 2021/3/25-2021/5/15
FM 1228 2021/3/25 2021/5/13
YM 158 2021/3/25 2021/5/15
XM 55 2021/3/25 2021/5/15

图1

花后遮光处理下不同小麦品种SPAD值的变化 不同小写字母表示处理间差异显著(P < 0.05)。CK: 自然光照; AS: 花后遮光。品种名缩写同表1。"

表2

花后遮光对不同小麦品种旗叶光合色素含量及叶绿素a/b的影响"

品种
Variety
处理时间
Duress time
(d)
叶绿素a含量
Chlorophyll a content (mg g-1)
叶绿素b含量
Chlorophyll b content (mg g-1)
叶绿素a/b
Chlorophyll a/b
CK AS CK AS CK AS
ZM 9023 0 1.72±0.07 a 1.72±0.07 a 0.57±0.06 a 0.57±0.06 a 2.99±0.12 a 2.99±0.12 a
21 1.54±0.10 a 1.55±0.06 a 0.67±0.02 a 0.71±0.05 a 2.30±0.12 a 2.18±0.10 a
35 0.77±0.11 a 1.10±0.08 b 0.13±0.07 a 0.20±0.07 a 5.78±0.31 a 5.44±0.14 a
FM 1228 0 2.12±0.12 a 2.12±0.12 a 0.64±0.01 a 0.64±0.01 a 3.34±0.27 a 3.34±0.27 a
21 1.17±0.12 a 1.12±0.12 a 0.68±0.02 a 0.70±0.01 a 1.51±0.10 a 1.40±0.01 a
35 0.54±0.05 a 0.62±0.09 a 0.15±0.02 a 0.17±0.01 a 3.73±0.40 a 3.62±0.11 a
YM 158 0 2.10±0.08 a 2.10±0.08 a 0.69±0.02 a 0.69±0.02 a 3.05±0.41 a 3.05±0.41 a
21 1.60±0.09 a 1.81±0.07 b 0.75±0.01 a 0.97±0.01 b 2.01±0.11 a 1.76±0.03 b
35 0.62±0.13 a 1.20±0.13 b 0.14±0.06 a 0.30±0.04 b 4.49±0.39 a 3.95±0.13 b
XM 55 0 1.76±0.06 a 1.76±0.06 a 0.53±0.03 a 0.53±0.03 a 3.32±0.24 a 3.32±0.24 a
21 1.61±0.11 a 2.08±0.09 b 0.68±0.07 a 0.99±0.01 b 2.36±0.10 a 2.09±0.11 b
35 0.77±0.11 a 1.26±0.09 b 0.18±0.04 a 0.46±0.01 b 4.16±0.28 a 3.23±0.22 b

表3

花后遮光对不同小麦品种SOD活性的影响"

品种
Variety
处理时间
Duress time (d)
SOD活性 SOD activity (U g-1 FW min-1)
CK AS
ZM 9023 0 250.63±2.80 a 250.63±2.81 a
21 219.99±1.47 a 240.46±1.61 b
35 204.70±1.87 a 213.00±2.79 a
FM 1228 0 289.17±3.23 a 289.17±3.24 a
21 245.60±9.68 a 257.71±3.23 a
35 196.31±2.69 a 209.28±3.73 a
YM 158 0 276.07±2.93 a 276.07±2.94 a
21 250.45±1.08 a 285.96±2.93 a
35 204.20±2.91 a 261.12±3.88 b
XM 55 0 278.59±3.23 a 278.59±3.24 a
21 247.22±5.66 a 293.10±3.23 b
35 220.66±4.62 a 255.92±6.29 b

图2

花后遮光21 d不同小麦品种旗叶显微结构的变化 CK: 自然光照; AS: 花后遮光。品种名缩写同表1。"

表4

花后遮光21 d对不同小麦品种叶片组织厚度的影响"

品种
Variety
处理
Treatment
上表皮厚度
Upper
epidermis thickness
(μm)
下表皮厚度
Lower
epidermis thickness
(μm)
栅栏组织厚度
Palisade
tissue thickness
(μm)
海绵组织厚度
Sponge
tissue thickness
(μm)
叶片厚度
Leaf
thickness
(μm)
栅海比
Fence tissue sponge tissue ratio
叶片结构
紧实度
Tightness of the blade structure
叶片结构
疏密度
Blade structure dredging
density
ZM 9023 CK 13.37±0.58 a 12.26±0.78 a 50.32±2.90 a 40.69±7.47 a 165.86±6.68 a 1.24 a 0.30 a 0.25 a
AS 12.29±0.24 a 12.17±0.32 a 39.25±0.06 b 33.50±5.46 b 146.60±5.71 b 0.87 b 0.27 b 0.23 a
FM 1228 CK 12.96±0.94 a 11.14±0.12 a 59.18±3.36 a 42.58±7.80 a 157.23±4.11 a 1.39 a 0.40 a 0.29 a
AS 11.16±0.38 a 11.38±0.31 a 28.16±5.65 b 22.94±5.76 b 135.29±1.38 b 1.16 b 0.20 b 0.16 a
YM 158 CK 12.75±1.68 a 11.97±0.38 a 53.51±5.66 a 37.13±6.29 a 163.79±3.80 a 1.44 a 0.33 a 0.23 a
AS 10.90±1.32 a 9.31±0.43 a 40.46±3.86 b 28.46±1.88 b 154.34±2.41 b 1.32 a 0.24 b 0.18 a
XM 55 CK 13.90±0.98 a 10.99±0.59 a 51.97±2.59 a 37.76±2.07 a 151.50±3.54 a 1.38 a 0.34 a 0.25 a
AS 12.24±0.76 a 10.18±0.49 a 39.03±4.19 b 29.02±2.66 b 145.78±1.91 b 1.37 a 0.27 b 0.20 a

图3

花后遮光处理下不同小麦品种干物质积累量的变化 I: 开花期; II: 开花后21 d; III: 成熟期。不同小写字母表示处理间差异显著(P < 0.05)。CK: 自然光照; AS: 花后遮光。品种名缩写同表1。"

表5

花后遮光对不同小麦品种产量及其构成因素的影响"

年度
Year
品种
Variety
处理 Treatment 产量
Yield
(kg hm-2)
每公顷穗数
Number of ears
per hectare
(×104 hm-2)
穗粒数
Kernels per pike
千粒重
1000-grain weight
(g)
收获指数
Harvest
index
2018-2019 ZM 9023 CK 5525 a 447 a 39.9 a 36.83 a 0.43 a
AS 3119 b 444 a 39.7 a 24.23 b 0.32 b
FM 1228 CK 5808 a 423 a 40.2 a 38.12 a 0.43 a
AS 3009 b 421 a 39.4 a 24.03 b 0.29 b
YM 158 CK 5502 a 353 a 43.4 a 37.37 a 0.44 a
AS 3740 b 351 a 43.0 a 28.05 b 0.36 b
XM 55 CK 6417 a 412 a 46.5 a 41.08 a 0.43 a
AS 3999 b 414 a 44.8 a 29.43 b 0.35 b
2020-2021 ZM 9023 CK 3771 a 368 a 37.4 a 40.48 a 0.38 a
AS 2557 b 357 a 36.9 a 35.30 b 0.28 b
FM 1228 CK 4644 a 348 a 43.1 a 41.82 a 0.41 a
AS 2510 b 326 a 41.5 a 32.50 b 0.31 b
YM 158 CK 4078 a 326 a 40.9 a 46.14 a 0.40 a
AS 3008 b 340 a 40.8 a 38.16 b 0.34 b
XM 55 CK 3968 a 334 a 42.6 a 43.90 a 0.35 a
AS 2808 b 315 a 40.2 a 36.06 b 0.25 b
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