PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
May 22, 2026in silico Plants2 citationsOpen Access

Increasing transpiration sensitivity to rising vapor pressure deficit raises U.S. spring wheat yields under current and future climates: a two-model simulation study

View Full Paper
XZXiaoxing ZhenWSWalid Sadok

Key Points

  • This research investigates how varying transpiration sensitivity to vapor pressure deficit affects wheat yields in different climates and genetic traits.
  • Simulations were conducted using two crop models, APSIM and SSM-Wheat.
  • Historical and future climate scenarios for 2050s and 2080s were analyzed based on 20 Global Climate Models across 457 locations.
  • Yield performance was compared between genotypes expressing and not expressing transpiration VPD sensitivity.
  • Yield gains ranged from 13%-16% for VPD2.0 and 40%-45% for VPD1.5 under historical climates, all models confirming high probability (>0.8).
  • Future climate scenarios forecast yield increases of 16%-20% for VPD2.0 and 29%-65% for VPD1.5, except for extreme conditions in 2080s_RCP8.5.
  • Divergence in yield increase regions was noted between the two crop models.

Abstract

Abstract Limited wheat transpiration under rising vapor pressure deficit (VPD), that is, VPD-sensitivity, has been shown to improve yields under terminal drought, by conserving water. However, this trait may lead to yield penalties in well-watered environments. Using the U. S. spring wheat belt as a case study, simulations were conducted to assess the effect of genotypic variation in transpiration VPD sensitivity on yield performance across the entire region relative to a genotype not expressing this trait. We used two crop models, APSIM and SSM-Wheat, representing different levels of algorithmic complexity, and historical and future climate scenarios for the 2050s and 2080s based on simulations using 20 Global Climate Models across 457 locations. Regardless of the VPD threshold (1. 5 kPa, VPD1. 5 or 2 kPa, VPD2. 0) at which the sensitivity was initiated, this trait led to systematic yield gains (13%-16% for VPD2. 0, 40%-45% for VPD1. 5) under historic climate scenarios across the entire region, regardless of the crop model, with high probability (0. 8). Large yield benefits (16%-20% for VPD2. 0, 29%-65% for VPD1. 5) are also expected to occur throughout nearly all future climate scenarios, except for the most remote and extreme one (2080sRCP8. 5). Both crop models, however, diverged in identifying regions with the highest levels of yield increase. Overall, this study points to the key importance of introgressing transpiration sensitivity to VPD in U. S. wheat germplasm and to the need for joint analyses of more than one crop model in predicting spatially-resolved yield performance due to this trait.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Zhen et al. (2026) studied this question.

synapsesocial.com/papers/6a0ff496d674f7c03778dba0https://doi.org/10.1093/insilicoplants/diag013
Ask AI
Helpful
Bookmark
Share
View Full Paper