浙江农业学报 ›› 2021, Vol. 33 ›› Issue (3): 429-436.DOI: 10.3969/j.issn.1004-1524.2021.03.07
苟秉调, 段盼盼, 杨楠, 赵淑芳, 王永富, 张高原, 魏兵强*(
)
收稿日期:2020-08-25
出版日期:2021-03-25
发布日期:2021-03-25
作者简介:, 魏兵强,E-mail: bqwei@gsau.edu.cn通讯作者:
魏兵强
基金资助:
GOU Bingdiao, DUAN Panpan, YANG Nan, ZHAO Shufang, WANG Yongfu, ZHANG Gaoyuan, WEI Bingqiang*(
)
Received:2020-08-25
Online:2021-03-25
Published:2021-03-25
Contact:
WEI Bingqiang
摘要:
为筛选可用于鉴定和预测辣椒杂种优势的光合指标,利用隶属函数值、灰色关联法和相关性分析法分析了低温弱光胁迫对辣椒亲本及其杂交种F1苗期叶片净光合速率(Pn)、气孔导度(Gs)、胞间二氧化碳浓度(Ci)、蒸腾速率(Tr)和叶绿素含量的影响。结果表明:预测辣椒杂种优势的光合指标优劣顺序是Ci>Gs>叶绿素含量>Tr>Pn;低温弱光胁迫下,离中优势和超亲优势是评价辣椒杂种优势的优良度量标准; 3种辣椒材料的耐低温弱光能力大小为杂交种F1>父本>母本。此研究丰富了辣椒杂种优势理论,为合理选用辣椒杂种优势鉴定标准、预测辣椒杂种优势提供了理论依据。
中图分类号:
苟秉调, 段盼盼, 杨楠, 赵淑芳, 王永富, 张高原, 魏兵强. 低温弱光胁迫下辣椒苗期光合相关指标的杂种优势[J]. 浙江农业学报, 2021, 33(3): 429-436.
GOU Bingdiao, DUAN Panpan, YANG Nan, ZHAO Shufang, WANG Yongfu, ZHANG Gaoyuan, WEI Bingqiang. Heterosis analysis of photosynthetic parameters of pepper seedling responding to low temperature and low light stress[J]. Acta Agriculturae Zhejiangensis, 2021, 33(3): 429-436.
| 样品 Sample | 隶属函数值(X0) Subordinative function value | Pn(X1)/(μmol· m-2·s-1) | Gs (X2)/(μmol· m-2·s-1) | Ci (X3)/(μmol· mol-1) | Tr(X4)/(mmol· m-2·s-1) | C (X5) |
|---|---|---|---|---|---|---|
| MP | 0.724 | 5.003 | 0.035 | 326.629 | 1.682 | 41.433 |
| FP | 0.706 | 2.765 | 0.016 | 340.754 | 0.500 | 39.467 |
| F1 | 1.049 | 6.295 | 0.051 | 369.194 | 2.699 | 46.567 |
表1 三种辣椒材料在低温弱光胁迫下的隶属函数值与各项光合指标值
Table 1 Subordinative function value and photosynthetic parameter values of three pepper accessions under low temperature and low light stress
| 样品 Sample | 隶属函数值(X0) Subordinative function value | Pn(X1)/(μmol· m-2·s-1) | Gs (X2)/(μmol· m-2·s-1) | Ci (X3)/(μmol· mol-1) | Tr(X4)/(mmol· m-2·s-1) | C (X5) |
|---|---|---|---|---|---|---|
| MP | 0.724 | 5.003 | 0.035 | 326.629 | 1.682 | 41.433 |
| FP | 0.706 | 2.765 | 0.016 | 340.754 | 0.500 | 39.467 |
| F1 | 1.049 | 6.295 | 0.051 | 369.194 | 2.699 | 46.567 |
| 样品 Sample | X0' | X1' | X2' | X3' | X4' | X5' |
|---|---|---|---|---|---|---|
| MP | 0.724 | 0.916 | 0.663 | -2.446 | 0.387 | -0.589 |
| FP | 0.706 | -93.064 | -7.187 | -1.145 | -26.752 | -7.832 |
| F1 | 1.049 | 1.594 | 4.325 | 3.378 | 7.541 | 8.174 |
表2 不同辣椒材料在低温弱光胁迫下光合指标标准化处理的结果
Table 2 Standardized results of grey correlation analysis of photosynthetic parameter values of different pepper materials under low temperature and low light stress
| 样品 Sample | X0' | X1' | X2' | X3' | X4' | X5' |
|---|---|---|---|---|---|---|
| MP | 0.724 | 0.916 | 0.663 | -2.446 | 0.387 | -0.589 |
| FP | 0.706 | -93.064 | -7.187 | -1.145 | -26.752 | -7.832 |
| F1 | 1.049 | 1.594 | 4.325 | 3.378 | 7.541 | 8.174 |
| 样品 Sample | ξ1 | ξ2 | ξ3 | ξ4 | ξ5 |
|---|---|---|---|---|---|
| MP | 1.000 | 0.996 | 0.933 | 1.001 | 0.989 |
| FP | 0.334 | 0.854 | 0.97 | 0.63 | 0.853 |
| F1 | 0.989 | 0.935 | 0.974 | 0.879 | 0.856 |
| 关联度 | 0.774 | 0.928 | 0.959 | 0.837 | 0.899 |
| Correlative degree | |||||
| 关联序 | 5 | 2 | 1 | 4 | 3 |
| Correlative order |
表3 不同辣椒材料对低温弱光的抗性与各指标的关联系数、关联度和关联序
Table 3 Correlative modulus, correlative degree and correlative order between low temperature and low light resistance of different pepper materials and photosynthetic parameter values
| 样品 Sample | ξ1 | ξ2 | ξ3 | ξ4 | ξ5 |
|---|---|---|---|---|---|
| MP | 1.000 | 0.996 | 0.933 | 1.001 | 0.989 |
| FP | 0.334 | 0.854 | 0.97 | 0.63 | 0.853 |
| F1 | 0.989 | 0.935 | 0.974 | 0.879 | 0.856 |
| 关联度 | 0.774 | 0.928 | 0.959 | 0.837 | 0.899 |
| Correlative degree | |||||
| 关联序 | 5 | 2 | 1 | 4 | 3 |
| Correlative order |
图1 低温弱光胁迫对辣椒苗期叶片净光合速率及其杂种优势的影响 CK,对照;T1,低温弱光处理。柱状图上无相同小写字母的表示各处理间差异显著(P<0.05)。下同。
Fig.1 Effects of low temperature and low light stress on net photosynthetic rate and heterosis of pepper leaves at seeding stage CK, Control; T1, Low temperature and low light treatment. Data on the bars marked without the same lowercase letter indicated significant differences at P<0.05. The same as below.
图2 低温弱光胁迫对辣椒苗期叶片气孔导度及其杂种优势的影响
Fig.2 Effects of low temperature and low light stress on stomatal conductance and heterosis of pepper leaves at seeding stage
图4 低温弱光胁迫对辣椒苗期叶片蒸腾速率及其杂种优势的影响
Fig.4 Effects of low temperature and low light stress on transpiration rate and heterosis of pepper leaves at seeding stage
图5 低温弱光胁迫对辣椒苗期叶片叶绿素含量及其杂种优势的影响
Fig.5 Effects of low temperature and low light stress on chlorophyll content and heterosis of pepper leaves at seeding stage
| 指标 Index | Pn | Gs | Ci | Tr | C | 超中优势 Mid-parent heterosis | 超亲优势 Super-parent heterosis |
|---|---|---|---|---|---|---|---|
| Gs | 0.889** | ||||||
| Ci | 0.489 | 0.626 | |||||
| Tr | 0.891** | 0.987** | 0.587 | ||||
| C | 0.757* | 0.867** | 0.676* | 0.913** | |||
| 超中优势 Mid-parent heterosis | -0.355 | -0.252 | -0.006 | -0.133 | 0.213 | ||
| 超亲优势 Super-parent heterosis | 0.034 | 0.18 | -0.071 | 0.251 | 0.466 | 0.866 | |
| 离中优势 Superiority from mid-parent | 0.707 | 0.573 | -0.604 | 0.552 | 0.022 | -0.113 | -0.065 |
表4 低温弱光胁迫下辣椒苗期光合相关指标与杂种优势的相关性分析
Table 4 Correlation analysis between photosynthetic relative indexes and heterosis of pepper at seedling stage under low temperature and low light stress
| 指标 Index | Pn | Gs | Ci | Tr | C | 超中优势 Mid-parent heterosis | 超亲优势 Super-parent heterosis |
|---|---|---|---|---|---|---|---|
| Gs | 0.889** | ||||||
| Ci | 0.489 | 0.626 | |||||
| Tr | 0.891** | 0.987** | 0.587 | ||||
| C | 0.757* | 0.867** | 0.676* | 0.913** | |||
| 超中优势 Mid-parent heterosis | -0.355 | -0.252 | -0.006 | -0.133 | 0.213 | ||
| 超亲优势 Super-parent heterosis | 0.034 | 0.18 | -0.071 | 0.251 | 0.466 | 0.866 | |
| 离中优势 Superiority from mid-parent | 0.707 | 0.573 | -0.604 | 0.552 | 0.022 | -0.113 | -0.065 |
| [1] | 邹学校, 马艳青, 戴雄泽 , 等. 辣椒在中国的传播与产业发展[J]. 园艺学报, 2020,47(9):1715-1726. |
| ZOU X X, MA Y Q, DAI X Z , et al. Spread and industry development of pepper in China[J]. Acta Horticulturae Sinica, 2020,47(9):1715-1726. (in Chinese with English abstract) | |
| [2] | SAFARI N, IRANBAKHSH A, ORAGHI ARDEBILI Z . Non-thermal plasma modified growth and differentiation process of Capsicum annuum PP805 Godiva in vitro conditions[J]. Plasma Science and Technology, 2017,19(5):47-52. |
| [3] | 刘旭, 郑殿升, 董玉琛 , 等. 中国农作物及其野生近缘植物多样性研究进展[J]. 植物遗传资源学报, 2008,9(4):411-416. |
| LIU X, ZHENG D S, DONG Y C , et al. Diversity assessment of crops and their wild relatives in China[J]. Journal of Plant Genetic Resources, 2008,9(4):411-416.(in Chinese with English abstract) | |
| [4] | HÜNER N P A, DAHAL K, BODE R , et al. Photosynthetic acclimation, vernalization, crop productivity and ‘the grand design of photosynjournal’[J]. Journal of Plant Physiology, 2016,203:29-43. |
| [5] |
NOWICKA B, CIURA J, SZYMA$\acute{N}$SKA R, et al. Improving photosynjournal, plant productivity and abiotic stress tolerance-current trends and future perspectives[J]. Journal of Plant Physiology, 2018,231:415-433.
DOI URL PMID |
| [6] |
ALLEN D J, ORT D R . Impacts of chilling temperatures on photosynjournal in warm-climate plants[J]. Trends in Plant Science, 2001,6(1):36-42.
DOI URL PMID |
| [7] | 吕晓菡, 柴伟国 . 低温弱光下不同起源地辣椒幼苗光合特性的比较研究[J]. 浙江农业学报, 2014,26(1):48-53. |
| LYU X H, CHAI W G . Comparsi on of photosynthetic characteristics of different origin pepper seedlings under low temperature and poor light[J]. Acta Agriculturae Zhejiangensis, 2014,26(1):48-53.(in Chinese with English abstract) | |
| [8] | 聂书明, 杜中平, 王丽慧 , 等. 低温弱光对辣椒叶片光合特性和生理特性的影响[J]. 西南农业学报, 2016,29(10):2319-2323. |
| NIE S M, DU Z P, WANG L H , et al. Effects of photosynjournal characteristics and physiological characteristics of pepper seedlings under low temperature and weak light stress[J]. Southwest China Journal of Agricultural Sciences, 2016,29(10):2319-2323.(in Chinese with English abstract) | |
| [9] | 段晓铨, 周书栋, 马艳青 . 辣椒杂交F1代主要农艺性状杂种优势分析[J]. 湖南农业科学, 2013(19):7-10. |
| DUAN X Q, ZHOU S D, MA Y Q . Heterosis analysis on main agricultural characters of pepper F1 hybrids[J]. Hunan Agricultural Sciences, 2013(19):7-10.(in Chinese with English abstract) | |
| [10] | 杨莎, 马艳青, 朱晨曦 , 等. 辣椒耐低温性鉴定技术标准[J]. 辣椒杂志, 2014,12(2):11-13. |
| YANG S, MA Y Q, ZHU C X , et al. Technical standard for identification of low temperature resistance of pepper[J]. Journal of China Capsicum, 2014,12(2):11-13.(in Chinese) | |
| [11] | 贺仲雄 . 模糊数学及其应用[M]. 天津: 天津科学技术出版社, 1985: 67-70. |
| [12] | 邓聚龙 . 灰色预测与决策[M]. 武汉: 华中理工大学出版社, 1986: 103-108. |
| [13] | 武兰芳 . 玉米主要农艺性状的灰色关联度分析[J]. 玉米科学, 1997,5(1):72-75. |
| WU L F . Grey correlative degree anatysis of main agronomic traits of maize hybrid[J]. Journal of Maize Sciences, 1997,5(1):72-75.(in Chinese with English abstract) | |
| [14] | 刘红梅, 周新跃, 陈杰 , 等. 籼型杂交稻光合特性的杂种优势分析[J]. 华北农学报, 2014,29(3):122-127. |
| LIU H M, ZHOU X Y, CHEN J , et al. Heterosis analysis of photosynthetic characteristics in indica hybrid rice[J]. Acta Agriculturae Boreali-Sinica, 2014,29(3):122-127.(in Chinese with English abstract) | |
| [15] | 朱为民, 朱龙英, 陆世钧 , 等. 光合特性作为番茄设施专用品种选育指标的效应[J]. 上海农业学报, 2001,17(4):45-48. |
| ZHU W M, ZHU L Y, LU S J , et al. Study on photosynthetic characters as screening indexes in tomato breeding for protected cultivation[J]. Acta Agriculturae Shanghai, 2001,17(4):45-48.(in Chinese with English abstract) | |
| [16] | 邢朝柱, 郭立平, 李威 , 等. 棉花杂种优势利用研究十年成就和未来发展[J]. 棉花学报, 2017,29(增刊):28-36. |
| XING C Z, GUO L P, LI W , et al. Ten-year achievements and future development of cotton heterosis utilization[J]. Cotton Science, 2017,29(Suppl.):28-36.(in Chinese with English abstract) | |
| [17] | 邹学校, 马艳青, 陈文超 , 等. 辣椒净光合速率杂种优势及其稳定性分析[J]. 上海农业学报, 2005,21(3):4-8. |
| ZOU X X, MA Y Q, CHEN W C , et al. The analysis of heterosis and stability of net photosynthetic rate of pepper (Capsicum annuum L.)[J]. Acta Agriculturae Shanghai, 2005,21(3):4-8.(in Chinese) | |
| [18] | 董文庆 . 棉花杂种优势的光合生理基础及耐高温品种筛选指标研究[D]. 南京: 南京农业大学, 2013. |
| DONG W Q . Study on photosynthetic basis of heterosis and screening for high-temperature tolerance in cotton[D]. Nanjing: Nanjing Agricultural University, 2013. (in Chinese with English abstract) | |
| [19] | 王永健, 张海英, 张峰 , 等. 低温弱光对不同黄瓜品种幼苗光合作用的影响[J]. 园艺学报, 2001,28(3):230-234. |
| WANG Y J, ZHANG H Y, ZHANG F , et al. Effects of low temperature and low light intensity stress on photosynjournal in seedlings of different cucumber varieties[J]. Acta Houticulturae Sinica, 2001,28(3):230-234.(in Chinese with English abstract) |
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