ArticleThe Plant cell2023
Natural variation in the prolyl 4-hydroxylase gene PtoP4H9 contributes to perennial stem growth in Populus.
Article in The Plant cell, 2023. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 9 papers.
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Who cites it
9 citing papers in PubMed, 15 citations in OpenAlex.
- A drought stress-induced MYB transcription factor regulates pavement cell shape in leaves of European aspen (Populus tremula).The New phytologist · 2026Article
- The ApWRKY26/ApERF4-ApMYB2 module regulates anthocyanin accumulation for the seasonal leaf color transition inHorticulture research · 2026Article
- Natural variants ofScience advances · 2025Article
- Natural variation in PtobZIP18 confers the trade-off between stem growth and drought tolerance in Populus.Plant biotechnology journal · 2025Article
- Seasons change and so do trees: Expression profiling of aspen reveals season-specific gene hubs.The Plant cell · 2025Article
- Genome-wide association studies in forestry.Molecular biology reports · 2025Review
- Heterogeneity in Mechanical Properties of Plant Cell Walls.Plants (Basel, Switzerland) · 2024Review
- Whole-genome resequencing identifies candidate genes and allelic variation in the MdNADP-ME promoter that regulate fruit malate and fructose contents in apple.Plant communications · 2024Article
- Analysis of Growth Trajectories and Verification of Related SNPs inInternational journal of molecular sciences · 2023Article
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Authors and funding
13 authors at 5 institutions in 3 countries.
Funding
Abstract
Perennial trees must maintain stem growth throughout their entire lifespan to progressively increase in size as they age. The overarching question of the molecular mechanisms that govern stem perennial growth in trees remains largely unanswered. Here we deciphered the genetic architecture that underlies perennial growth trajectories using genome-wide association studies (GWAS) for measures of growth traits across years in a natural population of Populus tomentosa. By analyzing the stem growth trajectory, we identified PtoP4H9, encoding prolyl 4-hydroxylase 9, which is responsible for the natural variation in the growth rate of diameter at breast height (DBH) across years. Quantifying the dynamic genetic contribution of PtoP4H9 loci to stem growth showed that PtoP4H9 played a pivotal role in stem growth regulation. Spatiotemporal expression analysis showed that PtoP4H9 was highly expressed in cambium tissues of poplars of various ages. Overexpression and knockdown of PtoP4H9 revealed that it altered cell expansion to regulate cell wall modification and mechanical characteristics, thereby promoting stem growth in Populus. We showed that natural variation in PtoP4H9 occurred in a BASIC PENTACYSTEINE transcription factor PtoBPC1-binding promoter element controlling PtoP4H9 expression. The geographic distribution of PtoP4H9 allelic variation was consistent with the modes of selection among populations. Altogether, our study provides important genetic insights into dynamic stem growth in Populus, and we confirmed PtoP4H9 as a potential useful marker for breeding or genetic engineering of poplars.
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