Cargando…

Transcriptional regulation of the raffinose family oligosaccharides pathway in Sorghum bicolor reveals potential roles in leaf sucrose transport and stem sucrose accumulation

Bioenergy sorghum hybrids are being developed with enhanced drought tolerance and high levels of stem sugars. Raffinose family oligosaccharides (RFOs) contribute to plant environmental stress tolerance, sugar storage, transport, and signaling. To better understand the role of RFOs in sorghum, genes...

Descripción completa

Detalles Bibliográficos
Autores principales: McKinley, Brian A., Thakran, Manish, Zemelis-Durfee, Starla, Huang, Xinyi, Brandizzi, Federica, Rooney, William L., Mansfield, Shawn D., Mullet, John E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9785717/
https://www.ncbi.nlm.nih.gov/pubmed/36570942
http://dx.doi.org/10.3389/fpls.2022.1062264
_version_ 1784858116691591168
author McKinley, Brian A.
Thakran, Manish
Zemelis-Durfee, Starla
Huang, Xinyi
Brandizzi, Federica
Rooney, William L.
Mansfield, Shawn D.
Mullet, John E.
author_facet McKinley, Brian A.
Thakran, Manish
Zemelis-Durfee, Starla
Huang, Xinyi
Brandizzi, Federica
Rooney, William L.
Mansfield, Shawn D.
Mullet, John E.
author_sort McKinley, Brian A.
collection PubMed
description Bioenergy sorghum hybrids are being developed with enhanced drought tolerance and high levels of stem sugars. Raffinose family oligosaccharides (RFOs) contribute to plant environmental stress tolerance, sugar storage, transport, and signaling. To better understand the role of RFOs in sorghum, genes involved in myo-inositol and RFO metabolism were identified and relative transcript abundance analyzed during development. Genes involved in RFO biosynthesis (SbMIPS1, SbInsPase, SbGolS1, SbRS) were more highly expressed in leaves compared to stems and roots, with peak expression early in the morning in leaves. SbGolS, SbRS, SbAGA1 and SbAGA2 were also expressed at high levels in the leaf collar and leaf sheath. In leaf blades, genes involved in myo-inositol biosynthesis (SbMIPS1, SbInsPase) were expressed in bundle sheath cells, whereas genes involved in galactinol and raffinose synthesis (SbGolS1, SbRS) were expressed in mesophyll cells. Furthermore, SbAGA1 and SbAGA2, genes that encode neutral-alkaline alpha-galactosidases that hydrolyze raffinose, were differentially expressed in minor vein bundle sheath cells and major vein and mid-rib vascular and xylem parenchyma. This suggests that raffinose synthesized from sucrose and galactinol in mesophyll cells diffuses into vascular bundles where hydrolysis releases sucrose for long distance phloem transport. Increased expression (>20-fold) of SbAGA1 and SbAGA2 in stem storage pith parenchyma of sweet sorghum between floral initiation and grain maturity, and higher expression in sweet sorghum compared to grain sorghum, indicates these genes may play a key role in non-structural carbohydrate accumulation in stems.
format Online
Article
Text
id pubmed-9785717
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher Frontiers Media S.A.
record_format MEDLINE/PubMed
spelling pubmed-97857172022-12-24 Transcriptional regulation of the raffinose family oligosaccharides pathway in Sorghum bicolor reveals potential roles in leaf sucrose transport and stem sucrose accumulation McKinley, Brian A. Thakran, Manish Zemelis-Durfee, Starla Huang, Xinyi Brandizzi, Federica Rooney, William L. Mansfield, Shawn D. Mullet, John E. Front Plant Sci Plant Science Bioenergy sorghum hybrids are being developed with enhanced drought tolerance and high levels of stem sugars. Raffinose family oligosaccharides (RFOs) contribute to plant environmental stress tolerance, sugar storage, transport, and signaling. To better understand the role of RFOs in sorghum, genes involved in myo-inositol and RFO metabolism were identified and relative transcript abundance analyzed during development. Genes involved in RFO biosynthesis (SbMIPS1, SbInsPase, SbGolS1, SbRS) were more highly expressed in leaves compared to stems and roots, with peak expression early in the morning in leaves. SbGolS, SbRS, SbAGA1 and SbAGA2 were also expressed at high levels in the leaf collar and leaf sheath. In leaf blades, genes involved in myo-inositol biosynthesis (SbMIPS1, SbInsPase) were expressed in bundle sheath cells, whereas genes involved in galactinol and raffinose synthesis (SbGolS1, SbRS) were expressed in mesophyll cells. Furthermore, SbAGA1 and SbAGA2, genes that encode neutral-alkaline alpha-galactosidases that hydrolyze raffinose, were differentially expressed in minor vein bundle sheath cells and major vein and mid-rib vascular and xylem parenchyma. This suggests that raffinose synthesized from sucrose and galactinol in mesophyll cells diffuses into vascular bundles where hydrolysis releases sucrose for long distance phloem transport. Increased expression (>20-fold) of SbAGA1 and SbAGA2 in stem storage pith parenchyma of sweet sorghum between floral initiation and grain maturity, and higher expression in sweet sorghum compared to grain sorghum, indicates these genes may play a key role in non-structural carbohydrate accumulation in stems. Frontiers Media S.A. 2022-12-09 /pmc/articles/PMC9785717/ /pubmed/36570942 http://dx.doi.org/10.3389/fpls.2022.1062264 Text en Copyright © 2022 McKinley, Thakran, Zemelis-Durfee, Huang, Brandizzi, Rooney, Mansfield and Mullet https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Plant Science
McKinley, Brian A.
Thakran, Manish
Zemelis-Durfee, Starla
Huang, Xinyi
Brandizzi, Federica
Rooney, William L.
Mansfield, Shawn D.
Mullet, John E.
Transcriptional regulation of the raffinose family oligosaccharides pathway in Sorghum bicolor reveals potential roles in leaf sucrose transport and stem sucrose accumulation
title Transcriptional regulation of the raffinose family oligosaccharides pathway in Sorghum bicolor reveals potential roles in leaf sucrose transport and stem sucrose accumulation
title_full Transcriptional regulation of the raffinose family oligosaccharides pathway in Sorghum bicolor reveals potential roles in leaf sucrose transport and stem sucrose accumulation
title_fullStr Transcriptional regulation of the raffinose family oligosaccharides pathway in Sorghum bicolor reveals potential roles in leaf sucrose transport and stem sucrose accumulation
title_full_unstemmed Transcriptional regulation of the raffinose family oligosaccharides pathway in Sorghum bicolor reveals potential roles in leaf sucrose transport and stem sucrose accumulation
title_short Transcriptional regulation of the raffinose family oligosaccharides pathway in Sorghum bicolor reveals potential roles in leaf sucrose transport and stem sucrose accumulation
title_sort transcriptional regulation of the raffinose family oligosaccharides pathway in sorghum bicolor reveals potential roles in leaf sucrose transport and stem sucrose accumulation
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9785717/
https://www.ncbi.nlm.nih.gov/pubmed/36570942
http://dx.doi.org/10.3389/fpls.2022.1062264
work_keys_str_mv AT mckinleybriana transcriptionalregulationoftheraffinosefamilyoligosaccharidespathwayinsorghumbicolorrevealspotentialrolesinleafsucrosetransportandstemsucroseaccumulation
AT thakranmanish transcriptionalregulationoftheraffinosefamilyoligosaccharidespathwayinsorghumbicolorrevealspotentialrolesinleafsucrosetransportandstemsucroseaccumulation
AT zemelisdurfeestarla transcriptionalregulationoftheraffinosefamilyoligosaccharidespathwayinsorghumbicolorrevealspotentialrolesinleafsucrosetransportandstemsucroseaccumulation
AT huangxinyi transcriptionalregulationoftheraffinosefamilyoligosaccharidespathwayinsorghumbicolorrevealspotentialrolesinleafsucrosetransportandstemsucroseaccumulation
AT brandizzifederica transcriptionalregulationoftheraffinosefamilyoligosaccharidespathwayinsorghumbicolorrevealspotentialrolesinleafsucrosetransportandstemsucroseaccumulation
AT rooneywilliaml transcriptionalregulationoftheraffinosefamilyoligosaccharidespathwayinsorghumbicolorrevealspotentialrolesinleafsucrosetransportandstemsucroseaccumulation
AT mansfieldshawnd transcriptionalregulationoftheraffinosefamilyoligosaccharidespathwayinsorghumbicolorrevealspotentialrolesinleafsucrosetransportandstemsucroseaccumulation
AT mulletjohne transcriptionalregulationoftheraffinosefamilyoligosaccharidespathwayinsorghumbicolorrevealspotentialrolesinleafsucrosetransportandstemsucroseaccumulation