Chin J Plant Ecol ›› 2025, Vol. 49 ›› Issue (2): 282-294.DOI: 10.17521/cjpe.2024.0050 cstr: 32100.14.cjpe.2024.0050
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LI Shu-Wen1, TANG Lu-Yao1, ZHANG Bo-Na1, YE Lin-Feng1, TONG Jin-Lian1, XIE Jiang-Bo1,2, LI Yan1,2, WANG Zhong-Yuan1,2,*()
Received:
2024-02-19
Accepted:
2024-05-27
Online:
2025-02-20
Published:
2025-02-20
Contact:
WANG Zhong-Yuan
Supported by:
LI Shu-Wen, TANG Lu-Yao, ZHANG Bo-Na, YE Lin-Feng, TONG Jin-Lian, XIE Jiang-Bo, LI Yan, WANG Zhong-Yuan. Regional differentiation of cooperative relationships between Ulmus pumila branches and leaves along precipitation gradients[J]. Chin J Plant Ecol, 2025, 49(2): 282-294.
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URL: https://www.plant-ecology.com/EN/10.17521/cjpe.2024.0050
样点 Site | 缩写 Abbreviation | 经度 Longitude (° E) | 纬度 Latitude (°N) | 海拔 Altitude (m) | 年平均气温 Mean annual air temperature (℃) | 平均年降水量 Mean annual precipitation (mm) |
---|---|---|---|---|---|---|
浙江天目山 Tianmushan, Zhejiang | TMS | 119.44 | 30.34 | 1 142.00 | 15.30 | 1 390.00 |
河南鸡公山 Jigongshan, Henan | JGS | 114.09 | 31.87 | 260.00 | 15.20 | 1 118.00 |
河南宝天曼 Baotianman, Henan | BTM | 111.93 | 33.52 | 1 426.50 | 14.00 | 823.30 |
河南济源 Jiyuan, Henan | JY | 112.50 | 35.05 | 384.75 | 9.60 | 614.50 |
陕西安塞 Ansai, Shaanxi | AS | 109.32 | 36.86 | 1 218.00 | 7.90 | 534.00 |
宁夏固原 Guyuan, Ningxia | GY | 106.40 | 35.97 | 1 831.00 | 6.80 | 495.70 |
宁夏沙坡头 Shapotou, Ningxia | SPT | 104.99 | 37.46 | 1 247.00 | 6.60 | 186.00 |
甘肃民勤 Minqin, Gansu | MQ | 103.14 | 38.66 | 1 376.00 | 7.90 | 113.20 |
甘肃瓜州 Guazhou, Gansu | GZ | 95.78 | 40.50 | 1 139.00 | 7.60 | 54.40 |
新疆阜康 Fukang, Xinjiang | FK | 87.93 | 44.29 | 465.00 | 6.00 | 158.80 |
Table 1 Basic characteristics of each sample site of Ulmus pumila along the precipitation gradient zone
样点 Site | 缩写 Abbreviation | 经度 Longitude (° E) | 纬度 Latitude (°N) | 海拔 Altitude (m) | 年平均气温 Mean annual air temperature (℃) | 平均年降水量 Mean annual precipitation (mm) |
---|---|---|---|---|---|---|
浙江天目山 Tianmushan, Zhejiang | TMS | 119.44 | 30.34 | 1 142.00 | 15.30 | 1 390.00 |
河南鸡公山 Jigongshan, Henan | JGS | 114.09 | 31.87 | 260.00 | 15.20 | 1 118.00 |
河南宝天曼 Baotianman, Henan | BTM | 111.93 | 33.52 | 1 426.50 | 14.00 | 823.30 |
河南济源 Jiyuan, Henan | JY | 112.50 | 35.05 | 384.75 | 9.60 | 614.50 |
陕西安塞 Ansai, Shaanxi | AS | 109.32 | 36.86 | 1 218.00 | 7.90 | 534.00 |
宁夏固原 Guyuan, Ningxia | GY | 106.40 | 35.97 | 1 831.00 | 6.80 | 495.70 |
宁夏沙坡头 Shapotou, Ningxia | SPT | 104.99 | 37.46 | 1 247.00 | 6.60 | 186.00 |
甘肃民勤 Minqin, Gansu | MQ | 103.14 | 38.66 | 1 376.00 | 7.90 | 113.20 |
甘肃瓜州 Guazhou, Gansu | GZ | 95.78 | 40.50 | 1 139.00 | 7.60 | 54.40 |
新疆阜康 Fukang, Xinjiang | FK | 87.93 | 44.29 | 465.00 | 6.00 | 158.80 |
性状 Trait | 缩写 Abbreviation | 单位 Unit | |
---|---|---|---|
叶性状 Leaf trait | 最大净光合速率 Maximum net photosynthetic rate | Pn 1) | µmol·m-2·s-1 |
单位质量最大净光合速率 Maximum net photosynthetic rate per unit leaf mass | Amass 1) | µmol·g-1·s-1 | |
可操作气孔导度 Maximized operational stomatal conductance | Gop 1) | mol·m-2·s-1 | |
解剖学最大气孔导度 Anatomical maximum stomatal conductanc | Gsmax 1) | mol·m-2·s-1 | |
气孔打开比率 Stomatal opening ratio during gas exchange at light saturated conditions | Gratio 1) | % | |
水分利用效率 Water use efficiency | WUE 1) | % | |
膨压损失点叶水势 Turgor pressure loss point leaf water potential | Ψtlp 1) | MPa | |
气孔大小 Stomatal size | Ss 1) | µm2 | |
气孔密度 Stomatal density | Sd 1) | pore·mm-2 | |
气孔面积分数 Stomatal area fraction | Sf 1) | % | |
比叶质量 Leaf mass per area | LMA 1) | g·m-2 | |
叶脉密度 Vein density | Dv 1) | mm·mm-2 | |
叶片厚度 Leaf thickness | LT | µm | |
上表皮厚度 Upper tissue thickness | UET | µm | |
下表皮厚度 Lower tissue thickness | LET | µm | |
栅栏组织厚度 Palisade tissue thickness | PMT | µm | |
海绵组织厚度 Sponge tissue thickness | SMT | µm | |
栅栏组织厚度/海绵组织厚度 Ratio of palisade tissue thickness to sponge tissue thickness | PMT/SMT | ||
组织紧密度 Leaf tissue structure tightness | CTR | ||
组织疏松度 Looseness of leaf tissue structure | SR | ||
枝性状 Branch trait | 胡伯尔值 Huber value | Hv 1) | 103 mm2·cm-2 |
导管直径 Vessel diameter | D | µm | |
导管密度 Vessel density | Nv | pore·µm-2 | |
导管壁厚 Double thickness of vessel wall | Tw | µm | |
导管厚度跨度比 Thickness-to-span ratio | Ttob | 103 | |
木质部密度 Wood density | WD | g·cm-3 | |
比导率 Specific hydraulic conductivity | Ks | kg·m-1·s-1·MPa-1 | |
导水损失率为50%时水势 Water potential causing 50% loss of conductivity | P50 | MPa |
Table 2 Relevant traits, abbreviations, and units of Ulmus pumila along the precipitation gradient zone
性状 Trait | 缩写 Abbreviation | 单位 Unit | |
---|---|---|---|
叶性状 Leaf trait | 最大净光合速率 Maximum net photosynthetic rate | Pn 1) | µmol·m-2·s-1 |
单位质量最大净光合速率 Maximum net photosynthetic rate per unit leaf mass | Amass 1) | µmol·g-1·s-1 | |
可操作气孔导度 Maximized operational stomatal conductance | Gop 1) | mol·m-2·s-1 | |
解剖学最大气孔导度 Anatomical maximum stomatal conductanc | Gsmax 1) | mol·m-2·s-1 | |
气孔打开比率 Stomatal opening ratio during gas exchange at light saturated conditions | Gratio 1) | % | |
水分利用效率 Water use efficiency | WUE 1) | % | |
膨压损失点叶水势 Turgor pressure loss point leaf water potential | Ψtlp 1) | MPa | |
气孔大小 Stomatal size | Ss 1) | µm2 | |
气孔密度 Stomatal density | Sd 1) | pore·mm-2 | |
气孔面积分数 Stomatal area fraction | Sf 1) | % | |
比叶质量 Leaf mass per area | LMA 1) | g·m-2 | |
叶脉密度 Vein density | Dv 1) | mm·mm-2 | |
叶片厚度 Leaf thickness | LT | µm | |
上表皮厚度 Upper tissue thickness | UET | µm | |
下表皮厚度 Lower tissue thickness | LET | µm | |
栅栏组织厚度 Palisade tissue thickness | PMT | µm | |
海绵组织厚度 Sponge tissue thickness | SMT | µm | |
栅栏组织厚度/海绵组织厚度 Ratio of palisade tissue thickness to sponge tissue thickness | PMT/SMT | ||
组织紧密度 Leaf tissue structure tightness | CTR | ||
组织疏松度 Looseness of leaf tissue structure | SR | ||
枝性状 Branch trait | 胡伯尔值 Huber value | Hv 1) | 103 mm2·cm-2 |
导管直径 Vessel diameter | D | µm | |
导管密度 Vessel density | Nv | pore·µm-2 | |
导管壁厚 Double thickness of vessel wall | Tw | µm | |
导管厚度跨度比 Thickness-to-span ratio | Ttob | 103 | |
木质部密度 Wood density | WD | g·cm-3 | |
比导率 Specific hydraulic conductivity | Ks | kg·m-1·s-1·MPa-1 | |
导水损失率为50%时水势 Water potential causing 50% loss of conductivity | P50 | MPa |
Fig. 1 Regression analysis of branches and leaves traits of Ulmus pumila along the precipitation gradient (mean ± SE). Abbreviations of each research site are shown in Table 1, and abbreviations of traits are shown in Table 2. NS, no significant correlation.
Fig. 2 Changes of branches and leaves traits of Ulmus pumila across different wet and dry regions (mean ± SE). Different uppercase letters indicated significant difference in different regions (p < 0.05). Among them, the changes of 13 traits such as leaf hydraulics, photosynthesis, and stomata from humid to arid areas have been shown in a published article (Xie et al., 2022, Fig. 3). Abbreviations of traits are shown in Table 2.
Fig. 3 Coefficient of variation (A), variance components of traits based on nested ANOVAs (B) and principal component (PC) analysis (C) of traits in Ulmus pumila. Box plots from PC analysis illustrate the differences in different regions, different uppercase letters indicated significant difference in different regions (p < 0.05). Abbreviations of traits are shown in Table 2.
Fig. 4 Transect and the interaction network of branches and leaves across a gradient from humid to arid regions of Ulmus pumila. Abbreviations of the analyzed traits are shown in Table 2.
Fig. 5 Relationship between branches and leaves traits of Ulmus pumila (mean ± SE). Data from all sites were used to model variations across different regions. The abbreviations of the studied sites are shown in Table 1, and the abbreviations of the studied traits are shown in Table 2. NS, no significant correlation.
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