

新疆农业科学 ›› 2025, Vol. 62 ›› Issue (5): 1208-1218.DOI: 10.6048/j.issn.1001-4330.2025.05.018
陈兵权1(
), 陈虹1(
), 赵善超2, 郭来珍1, 赵鑫1, 陈俊杰1, 韩珏1
收稿日期:2024-10-15
出版日期:2025-05-20
发布日期:2025-07-09
通信作者:
陈虹(1981-),女,四川人,教授,博士,硕士生导师,研究方向为森林培育、经济林栽培与生理,(E-mail)ch333999@126.com作者简介:陈兵权(1998-),男,安徽人,硕士研究生,研究方向为森林培育,(E-mail)chen834670681@163.com
基金资助:
CHEN Bingquan1(
), CHEN Hong1(
), ZHAO Shanchao2, GUO Laizhen1, ZHAO Xin1, CHEN Junjie1, HAN Jue1
Received:2024-10-15
Published:2025-05-20
Online:2025-07-09
Supported by:摘要:
【目的】分析不同光照强度下天山花楸幼苗叶片气孔特征及光合生理变化,探讨天山花楸对光照强度的适应,为天山花楸的保育及驯化引种提供参考。【方法】以天山花楸二年生幼苗为材料,通过不同针数遮阳网设置4个光照梯度处理(L1:50%、L2:30%、L3:10%和CK:100%),进行盆栽试验,分析不同光照强度下天山花楸幼苗的生长、叶片气孔特性、光合荧光参数及叶绿素含量的变化。【结果】天山花楸幼苗在L2处理下长势最好,其苗高和地径最大。随着光照强度的减弱,天山花楸叶片的气孔密度逐渐增加且在不同处理间存在显著性差异(P<0.05),而叶片气孔的长度、宽度、周长、面积及开度在不同光照条件下变化不显著(P>0.05)。天山花楸幼苗叶片的Pn、Gs及Tr随着光照强度的减弱呈先上升后下降趋势,Ci呈逐渐上升趋势;L2处理下,叶片的Pn最大,为17.07 μmol/(m2·s)。叶片Fv/Fm随光照强度减弱呈增加的趋势,各处理叶片的Fv/Fm显著高于CK处理(P<0.05);叶片ETR在L2处理到达最高,且叶片的ETR在处理间均存在显著差异(P<0.05);叶片的ФPSⅡ表现为L1>L2>CK>L3。叶片的Chl a、Chl b、Chl t和Car含量均随着光照强度减弱而增大,Chl a/b随着光照强度减弱而减小。叶片的光照强度与Pn、Tr呈极显著正相关(P<0.01),Fv/Fm与ETR、Chl a、Chl b和Chl t含量呈极显著正相关(P<0.01)。【结论】L2处理(光照强度为30%)的光照强度具有促进天山花楸幼苗光合作用和生长潜力,天山花楸提高苗木质量和引种栽培应适度遮阴。
中图分类号:
陈兵权, 陈虹, 赵善超, 郭来珍, 赵鑫, 陈俊杰, 韩珏. 光照对天山花楸幼苗生长和光合特征的影响[J]. 新疆农业科学, 2025, 62(5): 1208-1218.
CHEN Bingquan, CHEN Hong, ZHAO Shanchao, GUO Laizhen, ZHAO Xin, CHEN Junjie, HAN Jue. Effects of light on growth and photosynthetic characteristics of Sorbus tianschanica Rupr. Seedlings[J]. Xinjiang Agricultural Sciences, 2025, 62(5): 1208-1218.
| 处理 Treatments | 气孔密度 Stomatal density (个/mm2) | 长 Length (μm) | 宽 Width (μm) | 面积 Square (μm2) | 周长 Circumference (μm) | 开度 Aperture (μm) |
|---|---|---|---|---|---|---|
| CK | 15.9±0.85c | 27.7±0.73a | 18.9±0.40a | 421.8±16.3a | 75.2±1.51a | 8.0±0.29a |
| L1 | 17.8±0.78bc | 29.4±0.86a | 19.19±0.65a | 457.8±24.01a | 78.6±2.10a | 8.8±0.27a |
| L2 | 19.6±0.74b | 27.9±0.89a | 18.84±0.58a | 429.4±25.28a | 75.6±2.25a | 8.0±0.40a |
| L3 | 22.7±1.57a | 26.4±1.06a | 18.68±0.40a | 405.9±11.66a | 73.9±1.06a | 8.8±0.34a |
表1 不同光照条件下天山花楸叶片气孔特征的变化
Tab.1 Changes of different light conditions on stomatal characteristics of leaves of S.tianschanica Rupr.
| 处理 Treatments | 气孔密度 Stomatal density (个/mm2) | 长 Length (μm) | 宽 Width (μm) | 面积 Square (μm2) | 周长 Circumference (μm) | 开度 Aperture (μm) |
|---|---|---|---|---|---|---|
| CK | 15.9±0.85c | 27.7±0.73a | 18.9±0.40a | 421.8±16.3a | 75.2±1.51a | 8.0±0.29a |
| L1 | 17.8±0.78bc | 29.4±0.86a | 19.19±0.65a | 457.8±24.01a | 78.6±2.10a | 8.8±0.27a |
| L2 | 19.6±0.74b | 27.9±0.89a | 18.84±0.58a | 429.4±25.28a | 75.6±2.25a | 8.0±0.40a |
| L3 | 22.7±1.57a | 26.4±1.06a | 18.68±0.40a | 405.9±11.66a | 73.9±1.06a | 8.8±0.34a |
图2 不同光照强度下天山花楸叶片气孔特征的变化 注:A.CK处理的叶片气孔特征(×400);B.L1处理的叶片气孔特征(×400);C.L2处理的叶片气孔特征(×400);D.L3处理的叶片气孔特征(×400)
Fig.2 Changes of different light conditions on stomatal characteristics of leaves of S.tianschanica Rupr. Notes: A.Stomatal characteristics of CK treated leaves (×400); B.Stomatal characteristics of L1 treated leaves (×400); C.Stomatal characteristics of L2 treated leaves (×400);D.Stomatal characteristics of L3 treated leaves (×400)
| 处理 Treatments | 叶绿素a Chl a (mg/g) | 叶绿素b Chl b (mg/g) | 总叶绿素 Chl t (mg/g) | 类胡萝卜素 Car(mg/g) | 叶绿素a/b Chl a/b |
|---|---|---|---|---|---|
| CK | 2.05±0.02d | 0.53±0.03c | 2.58±0.04c | 0.69±0.01c | 3.92±0.23a |
| L1 | 2.51±0.06c | 0.79±0.09b | 3.30±0.14b | 0.78±0.02b | 3.23±0.26ab |
| L2 | 3.09±0.08a | 1.15±0.10a | 4.25±0.15a | 0.89±0.01a | 2.72±0.24b |
| L3 | 2.86±0.08b | 1.02±0.06ab | 3.89±0.14a | 0.71±0.03c | 2.82±0.12b |
表2 不同光照强度下天山花楸幼苗光合色素含量的变化
Tab.2 Changes of different light intensities on photosynthetic pigment content of S.tianschanica Rupr. seedlings
| 处理 Treatments | 叶绿素a Chl a (mg/g) | 叶绿素b Chl b (mg/g) | 总叶绿素 Chl t (mg/g) | 类胡萝卜素 Car(mg/g) | 叶绿素a/b Chl a/b |
|---|---|---|---|---|---|
| CK | 2.05±0.02d | 0.53±0.03c | 2.58±0.04c | 0.69±0.01c | 3.92±0.23a |
| L1 | 2.51±0.06c | 0.79±0.09b | 3.30±0.14b | 0.78±0.02b | 3.23±0.26ab |
| L2 | 3.09±0.08a | 1.15±0.10a | 4.25±0.15a | 0.89±0.01a | 2.72±0.24b |
| L3 | 2.86±0.08b | 1.02±0.06ab | 3.89±0.14a | 0.71±0.03c | 2.82±0.12b |
图3 不同光照强度下天山花楸幼苗叶片光合参数的变化 注:A.各处理叶片的Pn;B.各处理叶片的Gs;C.各处理叶片的Tr;D.各处理叶片的Ci
Fig.3 Changes of different light intensity on photosynthetic parameters of S.tianschanica Rupr. Seedlings Notes: A. Pn of each treatment blade; B. Gs of each treatment blade; C. Tr of each treatment blade; D. Ci of each treatment leaf
| 处理 Treatments | PSⅡ的最大 光合效率 (Fv/Fm) | PSⅡ的相对 电子传递速率 (ETR) | PSⅡ的实际 光合效率 (ФPSⅡ) | 光化学 猝灭系数 (qP) | 非光化学 猝灭系数 (qPN) | 非光化学猝灭 (NPQ) |
|---|---|---|---|---|---|---|
| CK | 0.75±0.22b | 1.64±0.14c | 0.40±0.02ab | 0.74±0.03a | 0.26±0.02b | 1.87±0.22a |
| L1 | 0.80±0.01a | 2.62±0.09b | 0.45±0.02a | 0.71±0.05ab | 0.36±0.04a | 1.43±0.23b |
| L2 | 0.80±0.01a | 3.48±0.06a | 0.41±0.01ab | 0.72±0.01ab | 0.26±0.02b | 1.59±0.17b |
| L3 | 0.81±0.01a | 2.75±0.12b | 0.35±0.02b | 0.64±0.02b | 0.30±0.03ab | 1.52±0.29b |
表3 不同光照强度下天山花楸幼苗叶片叶绿素荧光参数的变化
Tab.3 Changes of chlorophyll fluorescence parameters of S.tianschanica Rupr. seedlings under different light intensities
| 处理 Treatments | PSⅡ的最大 光合效率 (Fv/Fm) | PSⅡ的相对 电子传递速率 (ETR) | PSⅡ的实际 光合效率 (ФPSⅡ) | 光化学 猝灭系数 (qP) | 非光化学 猝灭系数 (qPN) | 非光化学猝灭 (NPQ) |
|---|---|---|---|---|---|---|
| CK | 0.75±0.22b | 1.64±0.14c | 0.40±0.02ab | 0.74±0.03a | 0.26±0.02b | 1.87±0.22a |
| L1 | 0.80±0.01a | 2.62±0.09b | 0.45±0.02a | 0.71±0.05ab | 0.36±0.04a | 1.43±0.23b |
| L2 | 0.80±0.01a | 3.48±0.06a | 0.41±0.01ab | 0.72±0.01ab | 0.26±0.02b | 1.59±0.17b |
| L3 | 0.81±0.01a | 2.75±0.12b | 0.35±0.02b | 0.64±0.02b | 0.30±0.03ab | 1.52±0.29b |
| [1] | 郑伟. 植物幼苗生长对策研究[D]. 长春: 东北师范大学, 2011. |
| ZHENG Wei. Study on the growth strategy of plant seedlings[D]. Changchun: Northeast Normal University, 2011. | |
| [2] | Zhu J J, Wang K, Sun Y R, et al. Response of Pinus koraiensis seedling growth to different light conditions based on the assessment of photosynthesis in current and one-year-old needles[J]. Journal of Forestry Research, 2014, 25(1): 53-62. |
| [3] | 蒋欣梅, 张雪, 程瑶, 等. 光强对蒲公英生长、活性成分积累及抗氧化活性的影响[J]. 东北农业大学学报, 2023, 54(3): 26-34. |
| JIANG Xinmei, ZHANG Xue, CHENG Yao, et al. Effects of light intensity on growth, accumulation of active constituents and antioxidant activities of Taraxacum mongolicum Hand.-Mazz[J]. Journal of Northeast Agricultural University, 2023, 54(3): 26-34. | |
| [4] | Olsrud M, Michelsen A. Effects of shading on photosynthesis, plant organic nitrogen uptake, and root fungal colonization in a subarctic mire ecosystem[J]. Botany, 2009, 87(5): 463-474. |
| [5] | 郑坚, 吴朝辉, 陈秋夏, 等. 遮荫对降香黄檀幼苗生长和生理的影响[J]. 林业科学, 2016, 52(12): 50-57. |
| ZHENG Jian, WU Zhaohui, CHEN Qiuxia, et al. Influence of shading on growth and physiology of Dalbergia odorifera seedlings[J]. Scientia Silvae Sinicae, 2016, 52(12): 50-57. | |
| [6] | 张培, 庞圣江, 刘士玲, 等. 遮荫对江南油杉幼苗生长和叶绿素荧光参数的影响[J]. 西北植物学报, 2023, 43(10): 1716-1722. |
| ZHANG Pei, PANG Shengjiang, LIU Shiling, et al. Effects of shading on growth and chlorophyll fluorescence characteristics of Keteleeria fortunei var. cyclolepis seedlings[J]. Acta Botanica Boreali-Occidentalia Sinica, 2023, 43(10): 1716-1722. | |
| [7] | Gong J R, Zhang Z H, Zhang C L, et al. Ecophysiological responses of three tree species to a high-altitude environment in the southeastern Tibetan Plateau[J]. Forests, 2018, 9(2): 48. |
| [8] | 汤正辉, 沈植国, 丁鑫, 等. 苗期遮阴对凤丹白牡丹光合特性的影响[J]. 经济林研究, 2017, 35(2): 84-89. |
| TANG Zhenghui, SHEN Zhiguo, DING Xin, et al. Effects of shading on photosynthetic characteristics in Paeonia ostii cv. ‘Phoenix White' seedlings[J]. Nonwood Forest Research, 2017, 35(2): 84-89. | |
| [9] | 张云, 夏国华, 马凯, 等. 遮阴对堇叶紫金牛光合特性和叶绿素荧光参数的影响[J]. 应用生态学报, 2014, 25(7): 1940-1948. |
| ZHANG Yun, XIA Guohua, MA Kai, et al. Effects of shade on photosynthetic characteristics and chlorophyll fluorescence of Ardisia violacea[J]. Chinese Journal of Applied Ecology, 2014, 25(7): 1940-1948. | |
| [10] | 刁俊明, 陈桂珠. 盆栽桐花树对不同遮光度的生理生态响应[J]. 生态学杂志, 2011, 30(4): 656-663. |
| DIAO Junming, CHEN Guizhu. Eco-physiological responses of pot-planted Aegiceras corniculatum to different shade levels[J]. Chinese Journal of Ecology, 2011, 30(4): 656-663. | |
| [11] | 赵洋, 陈云, 张晓晨, 等. 遮阴对少叶花楸幼苗光合和叶绿素荧光参数的影响[J]. 东北林业大学学报, 2019, 47(1): 30-34. |
| ZHAO Yang, CHEN Yun, ZHANG Xiaochen, et al. Effects of shading on photosynthetic and chlorophyll fluorescence response of Sorbus hupehensis var. paucijuga[J]. Journal of Northeast Forestry University, 2019, 47(1): 30-34. | |
| [12] | 石凯, 李泽, 张伟建, 等. 不同光照对油桐幼苗生长、光合日变化及叶绿素荧光参数的影响[J]. 中南林业科技大学学报, 2018, 38(8): 35-42, 50. |
| SHI Kai, LI Ze, ZHANG Weijian, et al. Influence of different light intensity on the growth, diurnal change of photosynthesis and chlorophyll fluorescence of tung tree seedling[J]. Journal of Central South University of Forestry & Technology, 2018, 38(8): 35-42, 50. | |
| [13] | 郭丽丽, 张运鑫, 张浩, 等. 不同光照条件对虎皮兰气孔特征及气体交换参数的影响[J]. 江苏农业科学, 2018, 46(3): 112-115, 122. |
| GUO Lili, ZHANG Yunxin, ZHANG Hao, et al. Effects of different light conditions on stomatal characteristics and gas exchange parameters of Sansevieria trifasciata Prain[J]. Jiangsu Agricultural Sciences, 2018, 46(3): 112-115, 122. | |
| [14] | 孟雷, 陈温福, 李磊鑫, 等. 减弱光照强度对水稻叶片气孔性状的影响[J]. 沈阳农业大学学报, 2002, 33(2): 87-89. |
| MENG Lei, CHEN Wenfu, LI Leixin, et al. Influence of low light on stomatal characters in rice leaves[J]. Journal of Shenyang Agricultural University, 2002, 33(2): 87-89. | |
| [15] | 陈兵权, 赵善超, 古丽米热·艾合买提, 等. 天山花楸的天然更新及其影响因子[J]. 安徽农业大学学报, 2023, 50(2): 206-212. |
| CHEN Bingquan, ZHAO Shanchao, Gulimire Aihemaiti, et al. Natural regeneration of Sorbus tianschanica Rupr. and its influencing factors[J]. Journal of Anhui Agricultural University, 2023, 50(2): 206-212. | |
| [16] | 张丹, 刘凯军, 马松梅, 等. 高山植物天山花楸的适宜分布及其环境驱动因子[J]. 生态学报, 2022, 42(2): 700-709. |
| ZHANG Dan, LIU Kaijun, MA Songmei, et al. The suitable distribution of alpine plant Sorbus tianschanica and its environmental driving factors[J]. Acta Ecologica Sinica, 2022, 42(2): 700-709. | |
| [17] | 汪智军, 靳开颜, 阿不都热西提. 不同砧木嫁接天山花楸比较试验研究[J]. 内蒙古林业科技, 2014, 40(4): 19-21. |
| WANG Zhijun, JIN Kaiyan, A budurexiti. Comparative test on grafting Sorbus tianschanica with different rootstock[J]. Journal of Inner Mongolia Forestry Science and Technology, 2014, 40(4): 19-21. | |
| [18] |
Mikulic-Petkovsek M, Krska B, Kiprovski B, et al. Bioactive components and antioxidant capacity of fruits from nine Sorbus genotypes[J]. Journal of Food Science, 2017, 82(3): 647-658.
DOI PMID |
| [19] | 吴娜, 屯妮萨古丽·艾买提江, 常军民, 等. 天山花楸抗哮喘活性提取部位的筛选及其成分分析[J]. 中南药学, 2023, 21(4): 863-869. |
| WU Na, Tunnisaguli Aimaitijiang, CHANG Junmin, et al. Screening of anti-asthmatic active extracts from Sorbus tianschanica Rupr. and component analysis[J]. Central South Pharmacy, 2023, 21(4): 863-869. | |
| [20] | 李慧芳, 庞克坚, 李乐, 等. 天山花楸叶黄酮提取物抗心肌缺血再灌注损伤作用机制研究[J]. 中草药, 2020, 51(20): 5243-5253. |
| LI Huifang, PANG Kejian, LI Le, et al. Effect of flavones of Sorbus tianschanica against myocardial ischemia reperfusion injury[J]. Chinese Traditional and Herbal Drugs, 2020, 51(20): 5243-5253. | |
| [21] | 王凯丽, 高彦钊, 李姗, 等. 短期干旱胁迫下棉花气孔表现及光合特征研究[J]. 中国生态农业学报(中英文), 2019, 27(6): 901-907. |
| WANG Kaili, GAO Yanzhao, LI Shan, et al. Response of leaf stomata and photosynthetic parameters to short-term drought stress in cotton(Gossypium hirsutum L.)[J]. Chinese Journal of Eco-Agriculture, 2019, 27(6): 901-907. | |
| [22] | 赵京东, 宋彦涛, 何畅, 等. 不同叶绿素测定方法的比较研究[J]. 大连民族大学学报, 2020, 22(5): 405-410. |
| ZHAO Jingdong, SONG Yantao, HE Chang, et al. Comparative study on different methods of chlorophyll determination[J]. Journal of Dalian Minzu University, 2020, 22(5): 405-410. | |
| [23] | Lichtenthaler H K, Wellburn A R. Determinations of total carotenoids and chlorophylls a and b of leaf extracts in different solvents[J]. Biochemical Society Transactions, 1983, 11(5): 591-592. |
| [24] | 王明援, 刘宁, 李波, 等. 不同光强对6个欧美杨无性系苗期生长及光合特性的影响[J]. 林业科学研究, 2020, 33(1): 123-130. |
| WANG Mingyuan, LIU Ning, LI Bo, et al. Effects of light intensity on the growth and photosynthetic characteristics of six Populus × euramericana clones at seedling stage[J]. Forest Research, 2020, 33(1): 123-130. | |
| [25] | 朱舒靖, 秦惠珍, 许爱祝, 等. 光照强度对西藏虎头兰幼苗生长及光合特性的影响[J]. 广西科学院学报, 2022, 38(2): 172-180. |
| ZHU Shujing, QIN Huizhen, XU Aizhu, et al. Effects of light intensity on the growth and photosynthetic characteristics of Cymbidium tracyanum L.Castle seedlings[J]. Journal of Guangxi Academy of Sciences, 2022, 38(2): 172-180. | |
| [26] | 张振英, 段朋娜, 陈昕. 遮阴对石灰花楸幼苗生长和光合特性的影响[J]. 甘肃农业大学学报, 2014, 49(6): 138-143. |
| ZHANG Zhenying, DUAN Pengna, CHEN Xin. Effects of shade treatment on growth and photosynthesis characteristics of Sorbus folgneri seedlings[J]. Journal of Gansu Agricultural University, 2014, 49(6): 138-143. | |
| [27] | Madsen E. Effect of CO2-concentration on the morphological, histological and cytological changes in tomato plants[J]. Acta Agriculturae Scandinavica, 1973, 23(4): 241-246. |
| [28] | 杨九艳, 杨劼, 杨明博, 等. 鄂尔多斯高原锦鸡儿属植物叶的解剖结构及其生态适应性[J]. 干旱区资源与环境, 2005, 19(3): 175-179. |
| YANG Jiuyan, YANG Jie, YANG Mingbo, et al. Leaf anatomical structures and ecological adaptabilities of 8Caragana specieson Ordos Plateau[J]. Journal of Arid Land Resources and Environment, 2005, 19(3): 175-179. | |
| [29] |
Lammertsma E I, de Boer H J, Dekker S C, et al. Global CO2 rise leads to reduced maximum stomatal conductance in Florida vegetation[J]. Proceedings of the National Academy of Sciences of the United States of America, 2011, 108(10): 4035-4040.
DOI PMID |
| [30] | 何佳蕾, 白史且, 孙林, 等. 10份沿阶草种质资源不同遮阴处理对光合生理指标和气孔的影响研究[J]. 草学, 2023,(4): 40-52. |
| HE Jialei, BAI Shiqie, SUN Lin, et al. Effects of different shading treatments on photosynthetic physiological indexes and stomata of 10 germplasm resources of Lepidoptera japonicum[J]. Journal of Grassland and Forage Science, 2023,(4): 40-52. | |
| [31] |
孙小玲, 许岳飞, 马鲁沂, 等. 植株叶片的光合色素构成对遮阴的响应[J]. 植物生态学报, 2010, 34(8): 989-999.
DOI |
|
SUN Xiaoling, XU Yuefei, MA Luyi, et al. A review of acclimation of photosynthetic pigment composition in plant leaves to shade environment[J]. Chinese Journal of Plant Ecology, 2010, 34(8): 989-999.
DOI |
|
| [32] |
唐星林, 姜姜, 金洪平, 等. 遮阴对闽楠叶绿素含量和光合特性的影响[J]. 应用生态学报, 2019, 30(9): 2941-2948.
DOI |
|
TANG Xinglin, JIANG Jiang, JIN Hongping, et al. Effects of shading on chlorophyll content and photosynthetic characteristics in leaves of Phoebe bournei[J]. Chinese Journal of Applied Ecology, 2019, 30(9): 2941-2948.
DOI |
|
| [33] | 陈凯, 杨梅, 刘世男. 不同光照对观光木幼苗生长及光合生理特性的影响[J]. 北华大学学报(自然科学版), 2019, 20(4): 536-541. |
| CHEN Kai, YANG Mei, LIU Shinan. Effects of different lights on growth and photosynthetic physiological characteristics of t.odorum seedlings[J]. Journal of Beihua University (Natural Science), 2019, 20(4): 536-541. | |
| [34] | 陶凌剑, 涂淑萍, 金莉颖, 等. 光照强度对圆齿野鸦椿叶片光合特性和叶绿素荧光参数的影响[J]. 经济林研究, 2022, 40(2): 225-231. |
| TAO Lingjian, TU Shuping, JIN Liying, et al. Effects of light intensity on photosynthetic characteristics and chlorophyll fluorescence parameters of leaves of Euscaphis konishii[J]. Non-wood Forest Research, 2022, 40(2): 225-231. | |
| [35] | 唐星林, 刘光正, 姜姜, 等. 遮阴对闽楠一年生和三年生幼树叶绿素荧光特性及能量分配的影响[J]. 生态学杂志, 2020, 39(10): 3247-3254. |
| TANG Xinglin, LIU Guangzheng, JIANG Jiang, et al. Effects of shading on the chlorophyll fluorescence characteristics and light energy partitioning of one-and three-year-old Phoebe bournei seedlings[J]. Chinese Journal of Ecology, 2020, 39(10): 3247-3254. | |
| [36] | Wang H C, Ngwenyama N, Liu Y D, et al. Stomatal development and patterning are regulated by environmentally responsive mitogen-activated protein kinases in Arabidopsis[J]. The Plant Cell, 2007, 19(1): 63-73. |
| [37] |
Juarez M T, Twigg R W, Timmermans M C P. Specification of adaxial cell fate during maize leaf development[J]. Development, 2004, 131(18): 4533-4544.
DOI PMID |
| [38] |
Hunt L, Bailey K J, Gray J E. The signalling peptide EPFL9 is a positive regulator of stomatal development[J]. New Phytologist, 2010, 186(3): 609-614.
DOI PMID |
| [39] | 陈泳纬, 吴永兵, 袁华恩, 等. 光照强度对雪茄烟叶光合特性、抗氧化特性及品质的影响[J]. 西南农业学报, 2023, 36(10): 2175-2182. |
| CHEN Yongwei, WU Yongbing, YUAN Huaen, et al. Effect of light intensity on photosynthesis, antioxidation properties and quality of cigar leaves[J]. Southwest China Journal of Agricultural Sciences, 2023, 36(10): 2175-2182. | |
| [40] | 韦中绵, 覃德文, 吴敏, 等. 不同光照强度对火力楠幼苗生长及生理特性的影响[J]. 西部林业科学, 2018, 47(2): 48-53. |
| WEI Zhongmian, QIN Dewen, WU Min, et al. Growth and physiological characteristics of Michelia macclurei in different light intensities[J]. Journal of West China Forestry Science, 2018, 47(2): 48-53. | |
| [41] | 陈昕, 张红星, 张振英. 黄山花楸幼苗对遮荫的形态、解剖和光合生理响应[J]. 东北林业大学学报, 2012, 40(10): 24-27, 33. |
| CHEN Xin, ZHANG Hongxing, ZHANG Zhenying. Morphological, anatomical, photosynthetic and physiological responses of Sorbus amabilis seedlings under different shade environments[J]. Journal of Northeast Forestry University, 2012, 40(10): 24-27, 33. | |
| [42] | Farquhar G D, Sharkey T D. Stomatal conductance and photosynthesis[J]. Annual Review of Plant Physiology, 1982, 33: 317-345. |
| [43] | 范元芳, 杨峰, 何知舟, 等. 套作大豆形态、光合特征对玉米荫蔽及光照恢复的响应[J]. 中国生态农业学报, 2016, 24(5): 608-617. |
| FAN Yuanfang, YANG Feng, HE Zhizhou, et al. Effects of shading and light recovery on soybean morphology and photosynthetic characteristics in soybean-maize intercropping system[J]. Chinese Journal of Eco-Agriculture, 2016, 24(5): 608-617. | |
| [44] | 李西文, 陈士林. 遮荫下高原濒危药用植物川贝母(Fritillaria cirrhosa)光合作用和叶绿素荧光特征[J]. 生态学报, 2008, 28(7): 3438-3446. |
| LI Xiwen, CHEN Shilin. Effect of shading on photosynthetic characteristics and chlorophyll fluorescence parameters in leaves of Fritillaria cirrhosa[J]. Acta Ecologica Sinica, 2008, 28(7): 3438-3446. | |
| [45] | Zhou Y, Huang L H, Wei X L, et al. Physiological, morphological, and anatomical changes in Rhododendron agastum in response to shading[J]. Plant Growth Regulation, 2017, 81(1): 23-30. |
| [46] |
Liu K, Tang C F, Zhou S B, et al. Comparison of the photosynthetic characteristics of four Lycoris species with leaf appearing in autumn under field conditions[J]. Photosynthetica, 2012, 50(4): 570-576.
DOI PMID |
| [47] | 陈超, 金则新, 袁梦, 等. 不同光照强度下濒危植物景宁木兰幼苗光合特性的季节变化[J]. 浙江农林大学学报, 2022, 39(5): 950-959. |
| CHEN Chao, JIN Zexin, YUAN Meng, et al. Seasonal changes of photosynthetic characteristics of seedlings of Magnolia sinostellata under different light intensities[J]. Journal of Zhejiang A & F University, 2022, 39(5): 950-959. | |
| [48] | 高秋美, 任丽华, 米真如, 等. 不同光照强度对多花黄精生长及光合特性的影响[J]. 山东农业科学, 2021, 53(6): 44-47. |
| GAO Qiumei, REN Lihua, MI Zhenru, et al. Effects of different illumination intensity on growth and photosynthetic characteristics of Polygonatum cyrtonema Hua[J]. Shandong Agricultural Sciences, 2021, 53(6): 44-47. |
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