Breeding Productive Tree Genotypes: The Role of Hydraulic Resistance Along the Root-Stem-Leaf Continuum in Constraining Growth.

IF 6.3 1区 生物学 Q1 PLANT SCIENCES Plant, Cell & Environment Pub Date : 2025-03-27 DOI:10.1111/pce.15512
Han Zhao, Rong Luo, Jing Cai, Qiurui Ning, Xuewei Gong, Zaimin Jiang
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Abstract

Breeding productive tree genotypes is crucial for sustainable forestry, yet the hydraulic architecture along root-stem-leaf continuum that constrains biomass yield remains unclear. Here, six poplar hybrid genotypes with contrasting yield were used to quantify whole-plant hydraulic resistance, its partitioning patterns, and anatomical traits along the continuum. We observed substantial genetic variations in hydraulic resistance parameters. Roots contributed the largest proportion of whole-plant hydraulic resistance (> 54%). Components along the continuum were well-coordinated, and hydraulic resistance of all components was strongly correlated with yield (R2 > 0.75), suggesting that hydraulic resistance is a strong predictor of yield. However, resistance partitioning patterns generally showed weak correlations with yield, with more productive genotypes partitioning a smaller proportion of resistance to leaves. Vessel diameter was a key determinant of hydraulic resistance at the root and leaf levels (R2 ≥ 0.75), and vessel length significantly influenced stem hydraulic resistance (R2 = 0.80). Additionally, genotypes with higher minor vein density and a lower ratio of palisade to spongy mesophyll thickness exhibited lower leaf resistance. Our results suggest that low hydraulic resistance throughout root-stem-leaf continuum is the functional basis for high yield, and the identification of key hydraulic and structural constraints will help overcome bottlenecks in breeding productive tree genotypes.

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高产树基因型的选育:沿根-茎-叶连续体的水力抗性在抑制生长中的作用。
培育高产树木基因型对可持续林业至关重要,但限制生物量产量的根-茎-叶连续体的水力结构尚不清楚。本研究利用产量对比的6个杨树杂交基因型,定量分析了整个植株的抗旱性、抗旱性分配模式和连续体上的解剖性状。我们观察到水力阻力参数的大量遗传变异。根系对全株水力阻力贡献最大,达54%。连续体上各组分协调良好,各组分的水力阻力与产量呈强相关(R2 > 0.75),表明水力阻力是产量的有力预测因子。然而,抗性分配模式通常与产量呈弱相关,高产基因型分配的叶片抗性比例较小。在根和叶水平上,导管直径是水力学阻力的关键决定因素(R2≥0.75),导管长度显著影响茎的水力学阻力(R2 = 0.80)。此外,小叶脉密度较高和栅栏叶肉厚度与海绵状叶肉厚度之比较低的基因型表现出较低的叶片抗性。研究结果表明,根-茎-叶连续体的低水力阻力是高产的功能基础,确定关键的水力和结构限制将有助于克服育种高产树基因型的瓶颈。
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来源期刊
Plant, Cell & Environment
Plant, Cell & Environment 生物-植物科学
CiteScore
13.30
自引率
4.10%
发文量
253
审稿时长
1.8 months
期刊介绍: Plant, Cell & Environment is a premier plant science journal, offering valuable insights into plant responses to their environment. Committed to publishing high-quality theoretical and experimental research, the journal covers a broad spectrum of factors, spanning from molecular to community levels. Researchers exploring various aspects of plant biology, physiology, and ecology contribute to the journal's comprehensive understanding of plant-environment interactions.
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