Cargando…

Comprehensive Time-Course Transcriptome Reveals the Crucial Biological Pathways Involved in the Seasonal Branch Growth in Siberian Elm (Ulmus pumila)

Timber, the most prevalent organic material on this planet, is the result of a secondary xylem emerging from vascular cambium. Yet, the intricate processes governing its seasonal generation are largely a mystery. To better understand the cyclic growth of vascular tissues in elm, we undertook an exte...

Descripción completa

Detalles Bibliográficos
Autores principales: Zhang, Luo-Yan, Yang, Cheng, Wu, Zhi-Cheng, Zhang, Xue-Jie, Fan, Shou-Jin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10573607/
https://www.ncbi.nlm.nih.gov/pubmed/37834427
http://dx.doi.org/10.3390/ijms241914976
_version_ 1785120503610998784
author Zhang, Luo-Yan
Yang, Cheng
Wu, Zhi-Cheng
Zhang, Xue-Jie
Fan, Shou-Jin
author_facet Zhang, Luo-Yan
Yang, Cheng
Wu, Zhi-Cheng
Zhang, Xue-Jie
Fan, Shou-Jin
author_sort Zhang, Luo-Yan
collection PubMed
description Timber, the most prevalent organic material on this planet, is the result of a secondary xylem emerging from vascular cambium. Yet, the intricate processes governing its seasonal generation are largely a mystery. To better understand the cyclic growth of vascular tissues in elm, we undertook an extensive study examining the anatomy, physiology, and genetic expressions in Ulmus pumila. We chose three robust 15-year-old elm trees for our study. The cultivars used in this study were collected from the Inner Mongolia Autonomous Region in China and nurtured in the tree farm of Shandong Normal University. Monthly samples of 2-year-old elm branches were taken from the tree from February to September. Marked seasonal shifts in elm branch vascular tissues were observed by phenotypic observation: In February, the cambium of the branch emerged from dormancy, spurring growth. By May, elms began generating secondary xylem, or latewood, recognized by its tiny pores and dense cell structure. From June to August, there was a marked increase in the thickness of the secondary xylem. Transcriptome sequencing provides a potential molecular mechanism for the thickening of elm branches and their response to stress. In February, the tree enhanced its genetic responses to cold and drought stress. The amplified expression of CDKB, CYCB, WOX4, and ARF5 in the months of February and March reinforced their essential role in the development of the vascular cambium in elm. Starting in May, the elm deployed carbohydrates as a carbon resource to synthesize the abundant cellulose and lignin necessary for the formation of the secondary wall. Major genes participating in cellulose (SUC and CESA homologs), xylan (UGD, UXS, IRX9, IRX10, and IRX14), and lignin (PAL, C4H, 4CL, HCT, C3H, COMT, and CAD) biosynthetic pathways for secondary wall formation were up-regulated by May or/and June. In conclusion, our findings provided a foundation for an in-depth exploration of the molecular processes dictating the seasonal growth of elm timber.
format Online
Article
Text
id pubmed-10573607
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-105736072023-10-14 Comprehensive Time-Course Transcriptome Reveals the Crucial Biological Pathways Involved in the Seasonal Branch Growth in Siberian Elm (Ulmus pumila) Zhang, Luo-Yan Yang, Cheng Wu, Zhi-Cheng Zhang, Xue-Jie Fan, Shou-Jin Int J Mol Sci Article Timber, the most prevalent organic material on this planet, is the result of a secondary xylem emerging from vascular cambium. Yet, the intricate processes governing its seasonal generation are largely a mystery. To better understand the cyclic growth of vascular tissues in elm, we undertook an extensive study examining the anatomy, physiology, and genetic expressions in Ulmus pumila. We chose three robust 15-year-old elm trees for our study. The cultivars used in this study were collected from the Inner Mongolia Autonomous Region in China and nurtured in the tree farm of Shandong Normal University. Monthly samples of 2-year-old elm branches were taken from the tree from February to September. Marked seasonal shifts in elm branch vascular tissues were observed by phenotypic observation: In February, the cambium of the branch emerged from dormancy, spurring growth. By May, elms began generating secondary xylem, or latewood, recognized by its tiny pores and dense cell structure. From June to August, there was a marked increase in the thickness of the secondary xylem. Transcriptome sequencing provides a potential molecular mechanism for the thickening of elm branches and their response to stress. In February, the tree enhanced its genetic responses to cold and drought stress. The amplified expression of CDKB, CYCB, WOX4, and ARF5 in the months of February and March reinforced their essential role in the development of the vascular cambium in elm. Starting in May, the elm deployed carbohydrates as a carbon resource to synthesize the abundant cellulose and lignin necessary for the formation of the secondary wall. Major genes participating in cellulose (SUC and CESA homologs), xylan (UGD, UXS, IRX9, IRX10, and IRX14), and lignin (PAL, C4H, 4CL, HCT, C3H, COMT, and CAD) biosynthetic pathways for secondary wall formation were up-regulated by May or/and June. In conclusion, our findings provided a foundation for an in-depth exploration of the molecular processes dictating the seasonal growth of elm timber. MDPI 2023-10-07 /pmc/articles/PMC10573607/ /pubmed/37834427 http://dx.doi.org/10.3390/ijms241914976 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Zhang, Luo-Yan
Yang, Cheng
Wu, Zhi-Cheng
Zhang, Xue-Jie
Fan, Shou-Jin
Comprehensive Time-Course Transcriptome Reveals the Crucial Biological Pathways Involved in the Seasonal Branch Growth in Siberian Elm (Ulmus pumila)
title Comprehensive Time-Course Transcriptome Reveals the Crucial Biological Pathways Involved in the Seasonal Branch Growth in Siberian Elm (Ulmus pumila)
title_full Comprehensive Time-Course Transcriptome Reveals the Crucial Biological Pathways Involved in the Seasonal Branch Growth in Siberian Elm (Ulmus pumila)
title_fullStr Comprehensive Time-Course Transcriptome Reveals the Crucial Biological Pathways Involved in the Seasonal Branch Growth in Siberian Elm (Ulmus pumila)
title_full_unstemmed Comprehensive Time-Course Transcriptome Reveals the Crucial Biological Pathways Involved in the Seasonal Branch Growth in Siberian Elm (Ulmus pumila)
title_short Comprehensive Time-Course Transcriptome Reveals the Crucial Biological Pathways Involved in the Seasonal Branch Growth in Siberian Elm (Ulmus pumila)
title_sort comprehensive time-course transcriptome reveals the crucial biological pathways involved in the seasonal branch growth in siberian elm (ulmus pumila)
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10573607/
https://www.ncbi.nlm.nih.gov/pubmed/37834427
http://dx.doi.org/10.3390/ijms241914976
work_keys_str_mv AT zhangluoyan comprehensivetimecoursetranscriptomerevealsthecrucialbiologicalpathwaysinvolvedintheseasonalbranchgrowthinsiberianelmulmuspumila
AT yangcheng comprehensivetimecoursetranscriptomerevealsthecrucialbiologicalpathwaysinvolvedintheseasonalbranchgrowthinsiberianelmulmuspumila
AT wuzhicheng comprehensivetimecoursetranscriptomerevealsthecrucialbiologicalpathwaysinvolvedintheseasonalbranchgrowthinsiberianelmulmuspumila
AT zhangxuejie comprehensivetimecoursetranscriptomerevealsthecrucialbiologicalpathwaysinvolvedintheseasonalbranchgrowthinsiberianelmulmuspumila
AT fanshoujin comprehensivetimecoursetranscriptomerevealsthecrucialbiologicalpathwaysinvolvedintheseasonalbranchgrowthinsiberianelmulmuspumila