Chin J Plant Ecol ›› 2025, Vol. 49 ›› Issue (3): 432-445.DOI: 10.17521/cjpe.2024.0053 cstr: 32100.14.cjpe.2024.0053
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HU Xiao-Hui1, WANG Xing-Chang1,*()(
), DONG Han-Jun1, LIU Yu-Long2, YUAN Dan-Yang1, LIU Di1, WANG Xiao-Chun1
Received:
2024-02-23
Accepted:
2024-08-23
Online:
2025-03-20
Published:
2024-08-26
Contact:
WANG Xing-Chang
Supported by:
HU Xiao-Hui, WANG Xing-Chang, DONG Han-Jun, LIU Yu-Long, YUAN Dan-Yang, LIU Di, WANG Xiao-Chun. Variation and coordination of non-structural carbohydrates among organs in 32 tree species from a temperate conifer-broadleaf mixed forest in Northeast China[J]. Chin J Plant Ecol, 2025, 49(3): 432-445.
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URL: https://www.plant-ecology.com/EN/10.17521/cjpe.2024.0053
序号 Code | 树种 Tree species | 木材孔性 Wood porosity | 胸径(平均值±标准差) DBH (mean ± SD) (cm) |
---|---|---|---|
1 | 赤松 Pinus densiflora | N | 43.23 ± 7.15 |
2 | 黄花落叶松 Larix olgensis | N | 42.57 ± 2.01 |
3 | 红松 Pinus koraiensis | N | 41.88 ± 3.25 |
4 | 臭冷杉 Abies nephrolepis | N | 38.40 ± 4.59 |
5 | 杜松 Juniperus rigida | N | 13.14 ± 2.45 |
6 | 红皮云杉 Picea koraiensis | N | 50.42 ± 5.44 |
7 | 鱼鳞云杉Picea jezoensis var. microsperma | N | 44.40 ± 5.95 |
8 | 东北红豆杉 Taxus cuspidata | N | 53.70 ± 10.12 |
9 | 杉松 Abies holophylla | N | 43.87 ± 12.16 |
10 | 东北槭 Acer mandshuricum | D | 36.17 ± 2.28 |
11 | 青楷槭 Acer tegmentosum | D | 23.58 ± 2.26 |
12 | 黑樱桃 Prunus maximowiczii | D | 24.05 ± 2.60 |
13 | 五角槭 Acer pictum subsp. mono | D | 41.60 ± 8.81 |
14 | 白桦 Betula platyphylla | D | 39.35 ± 5.93 |
15 | 辽东桤木 Alnus hirsuta | D | 31.31 ± 5.19 |
16 | 硕桦 Betula costata | D | 47.83 ± 6.44 |
17 | 大青杨 Populus ussuriensis | D | 52.62 ± 4.42 |
18 | 斑叶稠李 Padus maackii | D | 32.45 ± 1.51 |
19 | 紫椴 Tilia amurensis | D | 51.93 ± 9.87 |
20 | 山杨 Populus davidiana | D | 54.60 ± 7.71 |
21 | 黑桦 Betula dahurica | D | 51.10 ± 8.50 |
22 | 朝鲜柳 Salix koreensis | D | 40.93 ± 7.57 |
23 | 裂叶榆 Ulmus laciniata | R | 42.50 ± 7.34 |
24 | 水曲柳 Fraxinus mandshurica | R | 49.02 ± 9.15 |
25 | 朝鲜槐 Maackia amurensis | R | 21.23 ± 1.92 |
26 | 大果榆 Ulmus macrocarpa | R | 26.30 ± 3.11 |
27 | 蒙古栎 Quercus mongolica | R | 46.81 ± 3.64 |
28 | 软枣猕猴桃 Actinidia arguta | R | 8.47 ± 0.81 |
29 | 黄檗 Phellodendron amurense | R | 36.28 ± 8.99 |
30 | 胡桃楸 Juglans mandshurica | S | 38.53 ± 8.04 |
31 | 楤木 Aralia elata | R | 12.69 ± 6.63 |
32 | 春榆 Ulmus davidiana var. japonica | R | 38.76 ± 7.03 |
Table 1 Basic characteristics of sample trees from a temperate conifer-broadleaf mixed forest in Northeast China
序号 Code | 树种 Tree species | 木材孔性 Wood porosity | 胸径(平均值±标准差) DBH (mean ± SD) (cm) |
---|---|---|---|
1 | 赤松 Pinus densiflora | N | 43.23 ± 7.15 |
2 | 黄花落叶松 Larix olgensis | N | 42.57 ± 2.01 |
3 | 红松 Pinus koraiensis | N | 41.88 ± 3.25 |
4 | 臭冷杉 Abies nephrolepis | N | 38.40 ± 4.59 |
5 | 杜松 Juniperus rigida | N | 13.14 ± 2.45 |
6 | 红皮云杉 Picea koraiensis | N | 50.42 ± 5.44 |
7 | 鱼鳞云杉Picea jezoensis var. microsperma | N | 44.40 ± 5.95 |
8 | 东北红豆杉 Taxus cuspidata | N | 53.70 ± 10.12 |
9 | 杉松 Abies holophylla | N | 43.87 ± 12.16 |
10 | 东北槭 Acer mandshuricum | D | 36.17 ± 2.28 |
11 | 青楷槭 Acer tegmentosum | D | 23.58 ± 2.26 |
12 | 黑樱桃 Prunus maximowiczii | D | 24.05 ± 2.60 |
13 | 五角槭 Acer pictum subsp. mono | D | 41.60 ± 8.81 |
14 | 白桦 Betula platyphylla | D | 39.35 ± 5.93 |
15 | 辽东桤木 Alnus hirsuta | D | 31.31 ± 5.19 |
16 | 硕桦 Betula costata | D | 47.83 ± 6.44 |
17 | 大青杨 Populus ussuriensis | D | 52.62 ± 4.42 |
18 | 斑叶稠李 Padus maackii | D | 32.45 ± 1.51 |
19 | 紫椴 Tilia amurensis | D | 51.93 ± 9.87 |
20 | 山杨 Populus davidiana | D | 54.60 ± 7.71 |
21 | 黑桦 Betula dahurica | D | 51.10 ± 8.50 |
22 | 朝鲜柳 Salix koreensis | D | 40.93 ± 7.57 |
23 | 裂叶榆 Ulmus laciniata | R | 42.50 ± 7.34 |
24 | 水曲柳 Fraxinus mandshurica | R | 49.02 ± 9.15 |
25 | 朝鲜槐 Maackia amurensis | R | 21.23 ± 1.92 |
26 | 大果榆 Ulmus macrocarpa | R | 26.30 ± 3.11 |
27 | 蒙古栎 Quercus mongolica | R | 46.81 ± 3.64 |
28 | 软枣猕猴桃 Actinidia arguta | R | 8.47 ± 0.81 |
29 | 黄檗 Phellodendron amurense | R | 36.28 ± 8.99 |
30 | 胡桃楸 Juglans mandshurica | S | 38.53 ± 8.04 |
31 | 楤木 Aralia elata | R | 12.69 ± 6.63 |
32 | 春榆 Ulmus davidiana var. japonica | R | 38.76 ± 7.03 |
参数 Parameter | 变异来源 Source of variation | df | F | p |
---|---|---|---|---|
可溶性糖浓度 Soluble sugar concentration | 器官 Organ | 7 | 547.96 | <0.01 |
木材孔性 wood porosity | 2 | 5.08 | <0.01 | |
器官×木材孔性 Organ × wood porosity | 14 | 11.00 | <0.01 | |
淀粉浓度 Starch concentration | 器官 Organ | 7 | 82.20 | <0.01 |
木材孔性 Wood porosity | 2 | 58.58 | <0.01 | |
器官×木材孔性 Organ × wood porosity | 14 | 7.68 | <0.01 | |
总非结构性碳水化合物浓度 Total non-structural carbohydrates concentration | 器官 Organ | 7 | 425.40 | <0.01 |
木材孔性 Wood porosity | 2 | 10.68 | <0.01 | |
器官×木材孔性 Organ × wood porosity | 14 | 10.00 | <0.01 |
Table 2 Two-way analysis of variance for the concentrations of nonstructural carbohydrates in organs of 32 temperate tree species
参数 Parameter | 变异来源 Source of variation | df | F | p |
---|---|---|---|---|
可溶性糖浓度 Soluble sugar concentration | 器官 Organ | 7 | 547.96 | <0.01 |
木材孔性 wood porosity | 2 | 5.08 | <0.01 | |
器官×木材孔性 Organ × wood porosity | 14 | 11.00 | <0.01 | |
淀粉浓度 Starch concentration | 器官 Organ | 7 | 82.20 | <0.01 |
木材孔性 Wood porosity | 2 | 58.58 | <0.01 | |
器官×木材孔性 Organ × wood porosity | 14 | 7.68 | <0.01 | |
总非结构性碳水化合物浓度 Total non-structural carbohydrates concentration | 器官 Organ | 7 | 425.40 | <0.01 |
木材孔性 Wood porosity | 2 | 10.68 | <0.01 | |
器官×木材孔性 Organ × wood porosity | 14 | 10.00 | <0.01 |
Fig. 1 Comparisons of concentrations of non-structural carbohydrates (NSC) among organs in 32 temperate tree species. The error bars at the upper and lower ends of each “box” represent the 95% and 5% percentiles of the data, respectively; the upper and lower ends of the “box” represent the upper quartile and the lower quartile, respectively; and the horizontal line in the “box” represents the median value. Different lowercase letters mean significant difference in the concentrations of non-structural carbohydrates between organs (p < 0.05).
Fig. 2 Coefficient of inter-organ variation of non-structural carbohydrate (NSC) concentrations for different species. Code of tree species is the same as that in Table 1.
Fig. 3 Coefficient of intra-specific variation of non-structural carbohydrate concentration in different organs of 32 tree species in Muling (mean ± SD). Code of tree species is the same as that in Table 1.
Fig. 4 Concentrations of total non-structural carbohydrates (NSC) in different organs of 32 tree species in Muling. Code of tree species is the same as that in Table 1.
Fig. 5 Coefficient of inter-specific variation (CV) of non-structural carbohydrates (NSC) concentration in different organs of 32 tree species in Muling. Different lowercase letters indicate significant differences between organs (p < 0.05).
Fig. 6 Percentages of positive correlation, no correlation and negative correlation of non-structural carbohydrates (NSC) concentration between organs of 32 tree species in Muling. B, bark; Br, branch; C, coarse root; F, fine root; H, heartwood; L, leaf; S, stump; Sa, sapwood. The significant level is set to p < 0.05.
Fig. 8 Comparison of non-structural carbohydrate concentration (NSC) between wood porosity types of 32 tree species in Muling. Different lowercase letters indicate significant differences in NSC concentration between wood porosity types (p < 0.05).
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