Cargando…

The genome of the glasshouse plant noble rhubarb (Rheum nobile) provides a window into alpine adaptation

Glasshouse plants are species that trap warmth via specialized morphology and physiology, mimicking a human glasshouse. In the Himalayan alpine region, the highly specialized glasshouse morphology has independently evolved in distinct lineages to adapt to intensive UV radiation and low temperature....

Descripción completa

Detalles Bibliográficos
Autores principales: Feng, Tao, Pucker, Boas, Kuang, Tianhui, Song, Bo, Yang, Ya, Lin, Nan, Zhang, Huajie, Moore, Michael J., Brockington, Samuel F., Wang, Qingfeng, Deng, Tao, Wang, Hengchang, Sun, Hang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group UK 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10333194/
https://www.ncbi.nlm.nih.gov/pubmed/37429977
http://dx.doi.org/10.1038/s42003-023-05044-1
_version_ 1785070602017570816
author Feng, Tao
Pucker, Boas
Kuang, Tianhui
Song, Bo
Yang, Ya
Lin, Nan
Zhang, Huajie
Moore, Michael J.
Brockington, Samuel F.
Wang, Qingfeng
Deng, Tao
Wang, Hengchang
Sun, Hang
author_facet Feng, Tao
Pucker, Boas
Kuang, Tianhui
Song, Bo
Yang, Ya
Lin, Nan
Zhang, Huajie
Moore, Michael J.
Brockington, Samuel F.
Wang, Qingfeng
Deng, Tao
Wang, Hengchang
Sun, Hang
author_sort Feng, Tao
collection PubMed
description Glasshouse plants are species that trap warmth via specialized morphology and physiology, mimicking a human glasshouse. In the Himalayan alpine region, the highly specialized glasshouse morphology has independently evolved in distinct lineages to adapt to intensive UV radiation and low temperature. Here we demonstrate that the glasshouse structure – specialized cauline leaves – is highly effective in absorbing UV light but transmitting visible and infrared light, creating an optimal microclimate for the development of reproductive organs. We reveal that this glasshouse syndrome has evolved at least three times independently in the rhubarb genus Rheum. We report the genome sequence of the flagship glasshouse plant Rheum nobile and identify key genetic network modules in association with the morphological transition to specialized glasshouse leaves, including active secondary cell wall biogenesis, upregulated cuticular cutin biosynthesis, and suppression of photosynthesis and terpenoid biosynthesis. The distinct cell wall organization and cuticle development might be important for the specialized optical property of glasshouse leaves. We also find that the expansion of LTRs has likely played an important role in noble rhubarb adaptation to high elevation environments. Our study will enable additional comparative analyses to identify the genetic basis underlying the convergent occurrence of glasshouse syndrome.
format Online
Article
Text
id pubmed-10333194
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher Nature Publishing Group UK
record_format MEDLINE/PubMed
spelling pubmed-103331942023-07-12 The genome of the glasshouse plant noble rhubarb (Rheum nobile) provides a window into alpine adaptation Feng, Tao Pucker, Boas Kuang, Tianhui Song, Bo Yang, Ya Lin, Nan Zhang, Huajie Moore, Michael J. Brockington, Samuel F. Wang, Qingfeng Deng, Tao Wang, Hengchang Sun, Hang Commun Biol Article Glasshouse plants are species that trap warmth via specialized morphology and physiology, mimicking a human glasshouse. In the Himalayan alpine region, the highly specialized glasshouse morphology has independently evolved in distinct lineages to adapt to intensive UV radiation and low temperature. Here we demonstrate that the glasshouse structure – specialized cauline leaves – is highly effective in absorbing UV light but transmitting visible and infrared light, creating an optimal microclimate for the development of reproductive organs. We reveal that this glasshouse syndrome has evolved at least three times independently in the rhubarb genus Rheum. We report the genome sequence of the flagship glasshouse plant Rheum nobile and identify key genetic network modules in association with the morphological transition to specialized glasshouse leaves, including active secondary cell wall biogenesis, upregulated cuticular cutin biosynthesis, and suppression of photosynthesis and terpenoid biosynthesis. The distinct cell wall organization and cuticle development might be important for the specialized optical property of glasshouse leaves. We also find that the expansion of LTRs has likely played an important role in noble rhubarb adaptation to high elevation environments. Our study will enable additional comparative analyses to identify the genetic basis underlying the convergent occurrence of glasshouse syndrome. Nature Publishing Group UK 2023-07-10 /pmc/articles/PMC10333194/ /pubmed/37429977 http://dx.doi.org/10.1038/s42003-023-05044-1 Text en © The Author(s) 2023 https://creativecommons.org/licenses/by/4.0/Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons licence, and indicate if changes were made. The images or other third party material in this article are included in the article’s Creative Commons licence, unless indicated otherwise in a credit line to the material. If material is not included in the article’s Creative Commons licence and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this licence, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Article
Feng, Tao
Pucker, Boas
Kuang, Tianhui
Song, Bo
Yang, Ya
Lin, Nan
Zhang, Huajie
Moore, Michael J.
Brockington, Samuel F.
Wang, Qingfeng
Deng, Tao
Wang, Hengchang
Sun, Hang
The genome of the glasshouse plant noble rhubarb (Rheum nobile) provides a window into alpine adaptation
title The genome of the glasshouse plant noble rhubarb (Rheum nobile) provides a window into alpine adaptation
title_full The genome of the glasshouse plant noble rhubarb (Rheum nobile) provides a window into alpine adaptation
title_fullStr The genome of the glasshouse plant noble rhubarb (Rheum nobile) provides a window into alpine adaptation
title_full_unstemmed The genome of the glasshouse plant noble rhubarb (Rheum nobile) provides a window into alpine adaptation
title_short The genome of the glasshouse plant noble rhubarb (Rheum nobile) provides a window into alpine adaptation
title_sort genome of the glasshouse plant noble rhubarb (rheum nobile) provides a window into alpine adaptation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10333194/
https://www.ncbi.nlm.nih.gov/pubmed/37429977
http://dx.doi.org/10.1038/s42003-023-05044-1
work_keys_str_mv AT fengtao thegenomeoftheglasshouseplantnoblerhubarbrheumnobileprovidesawindowintoalpineadaptation
AT puckerboas thegenomeoftheglasshouseplantnoblerhubarbrheumnobileprovidesawindowintoalpineadaptation
AT kuangtianhui thegenomeoftheglasshouseplantnoblerhubarbrheumnobileprovidesawindowintoalpineadaptation
AT songbo thegenomeoftheglasshouseplantnoblerhubarbrheumnobileprovidesawindowintoalpineadaptation
AT yangya thegenomeoftheglasshouseplantnoblerhubarbrheumnobileprovidesawindowintoalpineadaptation
AT linnan thegenomeoftheglasshouseplantnoblerhubarbrheumnobileprovidesawindowintoalpineadaptation
AT zhanghuajie thegenomeoftheglasshouseplantnoblerhubarbrheumnobileprovidesawindowintoalpineadaptation
AT mooremichaelj thegenomeoftheglasshouseplantnoblerhubarbrheumnobileprovidesawindowintoalpineadaptation
AT brockingtonsamuelf thegenomeoftheglasshouseplantnoblerhubarbrheumnobileprovidesawindowintoalpineadaptation
AT wangqingfeng thegenomeoftheglasshouseplantnoblerhubarbrheumnobileprovidesawindowintoalpineadaptation
AT dengtao thegenomeoftheglasshouseplantnoblerhubarbrheumnobileprovidesawindowintoalpineadaptation
AT wanghengchang thegenomeoftheglasshouseplantnoblerhubarbrheumnobileprovidesawindowintoalpineadaptation
AT sunhang thegenomeoftheglasshouseplantnoblerhubarbrheumnobileprovidesawindowintoalpineadaptation
AT fengtao genomeoftheglasshouseplantnoblerhubarbrheumnobileprovidesawindowintoalpineadaptation
AT puckerboas genomeoftheglasshouseplantnoblerhubarbrheumnobileprovidesawindowintoalpineadaptation
AT kuangtianhui genomeoftheglasshouseplantnoblerhubarbrheumnobileprovidesawindowintoalpineadaptation
AT songbo genomeoftheglasshouseplantnoblerhubarbrheumnobileprovidesawindowintoalpineadaptation
AT yangya genomeoftheglasshouseplantnoblerhubarbrheumnobileprovidesawindowintoalpineadaptation
AT linnan genomeoftheglasshouseplantnoblerhubarbrheumnobileprovidesawindowintoalpineadaptation
AT zhanghuajie genomeoftheglasshouseplantnoblerhubarbrheumnobileprovidesawindowintoalpineadaptation
AT mooremichaelj genomeoftheglasshouseplantnoblerhubarbrheumnobileprovidesawindowintoalpineadaptation
AT brockingtonsamuelf genomeoftheglasshouseplantnoblerhubarbrheumnobileprovidesawindowintoalpineadaptation
AT wangqingfeng genomeoftheglasshouseplantnoblerhubarbrheumnobileprovidesawindowintoalpineadaptation
AT dengtao genomeoftheglasshouseplantnoblerhubarbrheumnobileprovidesawindowintoalpineadaptation
AT wanghengchang genomeoftheglasshouseplantnoblerhubarbrheumnobileprovidesawindowintoalpineadaptation
AT sunhang genomeoftheglasshouseplantnoblerhubarbrheumnobileprovidesawindowintoalpineadaptation