Bulletin of Botanical Research ›› 2026, Vol. 46 ›› Issue (4): 626-641.doi: 10.7525/j.issn.1673-5102.2026.04.005
• Original Paper • Previous Articles Next Articles
Xiang WAN1,2, Xiaoke HU1,3,4(
), Ping WU1,2, Fangyin HE1,3, Shujuan LIU1,2, Chenglin YUAN5,6
Received:2026-04-16
Online:2026-07-20
Published:2026-07-22
Contact:
Xiaoke HU
E-mail:huxiaoke525@163.com
CLC Number:
Xiang WAN, Xiaoke HU, Ping WU, Fangyin HE, Shujuan LIU, Chenglin YUAN. Differences in Multidimensional Functional Traits of Haloxylon ammodendron after Different Stubble Treatments in a Desert-Oasis Ecotone[J]. Bulletin of Botanical Research, 2026, 46(4): 626-641.
Fig.1
Differences in architectural traits of H. ammodendron under different stubble treatmentsA-E represented basal diameter(DB), plant height(HP), mean crown width(WMC), number of living branches(NLB), and dead branch rate (RDB), respectively. NS,50% HS-BN,50% HS-H and CS represented no stubble,half stubble by branch number(50%),half stubble by height(50%) and complete stubble, respectively. Data were mean±SE(n=8). Different lowercase letters indicated significant differences among treatments(P<0.05).
Fig.2
Differences in hydraulic efficiency- and hydraulic safety-related traits of H.ammodendron under different stubble treatmentsA-F represented sapwood-specific hydraulic conductivity(Ks), leaf-specific hydraulic conductivity(Kl), predawn water potential(Ψpd), midday water potential(Ψmd), percentage loss of conductivity(PLC) and hydraulic safety margin(HSM), respectively. NS, 50% HS-BN, 50% HS-H and CS represented no stubble, half stubble by branch number(50%), half stubble by height(50%) and complete stubble, respectively. Data were mean±SE(n=8). Different lowercase letters indicated significant differences among treatments(P<0.05).
Fig.3
Differences in carbon acquisition traits of H. ammodendron under different stubble treatmentsA-E represented net photosynthetic rate(Pn), stomatal conductance(Gs), transpiration rate(Tr), intrinsic water use efficiency(WUEi) and chlorophyll mass fraction(ω(Chl)), respectively. NS, 50% HS-BN, 50% HS-H and CS represented no stubble, half stubble by branch number(50%), half stubble by height(50%) and complete stubble, respectively. Data were mean±SE(n=8). Different lowercase letters indicated significant differences among treatments(P<0.05).
Fig.4
Differences in fine-root segment traits from the 80-90 cm soil layer and growing-season NSC contents of H. ammodendron under different stubble treatmentsA-F represented fine-root segment length(LR) in the 80-90 cm soil layer, root dry mass(MRD), specific root length(SRL), root NSC content(NSCroot), stem and leaf (assimilating-shoot) NSC content (NSCstem,NSCleaf), respectively. NS, 50% HS-BN, 50% HS-H and CS represented no stubble, half stubble by branch number(50%), half stubble by height(50%) and complete stubble, respectively. Data were mean±SE(n=8). Different lowercase letters indicated significant differences among treatments(P<0.05).
Fig.5
Principal component analysis of multidimensional functional traits of H.ammodendron under different stubble treatmentsPoints represented individual observations, ellipses represented 95% confidence ellipses for different treatment groups, and arrows indicated the loading directions of traits in the principal component space. NS, 50% HS-BN, 50% HS-H and CS represented no stubble, half stubble by branch number(50%), half stubble by height(50%) and complete stubble, respectively.
Fig.6
Comprehensive evaluation of functional perform-ance of H.ammodendron under different stubble treatmentsValues above bars indicated comprehensive evaluation scores. NS, 50% HS-BN, 50% HS-H and CS represented no stubble, half stubble by branch number(50%), half stubble by height(50%) and complete stubble, respectively.
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