Cargando…

Diverged Early From CtpB and CtpC, CtpA Has Evolved to Process D1 Precursor in Oxygenic Photosynthetic Organisms

C-terminal peptidase (Ctp) cleaves the C-terminal extension of the D1 precursor (pD1) to form mature D1. Among the three homologs CtpA, CtpB, and CtpC in photosynthetic organisms only the first is capable of processing pD1 while the roles of CtpB and CtpC remain elusive. Phylogenetic analysis of Ctp...

Descripción completa

Detalles Bibliográficos
Autores principales: Chang, Weidong, Li, Chenggang, Cui, Zheng, Li, Wei, Song, Haifeng, Chang, Han, Fu, Weihan, Wang, Chunyu, Huang, Ting, Luo, Yixin, Shan, Yelin, Wang, Yuhua, Wang, Fei, Xu, Min, Fu, Aigen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8121967/
https://www.ncbi.nlm.nih.gov/pubmed/34002114
http://dx.doi.org/10.3389/fpls.2021.676036
_version_ 1783692500118011904
author Chang, Weidong
Li, Chenggang
Cui, Zheng
Li, Wei
Song, Haifeng
Chang, Han
Fu, Weihan
Wang, Chunyu
Huang, Ting
Luo, Yixin
Shan, Yelin
Wang, Yuhua
Wang, Fei
Xu, Min
Fu, Aigen
author_facet Chang, Weidong
Li, Chenggang
Cui, Zheng
Li, Wei
Song, Haifeng
Chang, Han
Fu, Weihan
Wang, Chunyu
Huang, Ting
Luo, Yixin
Shan, Yelin
Wang, Yuhua
Wang, Fei
Xu, Min
Fu, Aigen
author_sort Chang, Weidong
collection PubMed
description C-terminal peptidase (Ctp) cleaves the C-terminal extension of the D1 precursor (pD1) to form mature D1. Among the three homologs CtpA, CtpB, and CtpC in photosynthetic organisms only the first is capable of processing pD1 while the roles of CtpB and CtpC remain elusive. Phylogenetic analysis of Ctps from photosynthetic organisms revealed that CtpA has diverged early from CtpB and CtpC during evolution implying distinct roles for the Ctps. Analysis of Arabidopsis Ctp-deficient mutants revealed that pD1 processing was not affected in atctpb, atctpc, or atctpbatctpc mutants, demonstrating that AtCtpA, not AtCtpB or AtCtpC, is responsible for cleaving the pD1 C-terminal extension. Ectopic expression of CtpAs from Synechococcus elongatus, Chlamydomonas reinhardtii, and Physcomitrella patens in atctpa rescued the lethal phenotype of the mutant indicating that SeCtpA, CrCtpA, and PpCtpA could process pD1 in Arabidopsis. Enzyme activity assays showed that PpCtpA and CrCtpA could convert pD1 into mature D1 in vitro. In contrast, expressing CtpB or CtpC from Arabidopsis, C. reinhardtii, or P. patens in atctpa did not rescue its D1 maturation deficiency, and enzyme activity assays also showed that neither CtpB nor CtpC could process pD1 in vitro. Taken together, we conclude that the function of pD1 processing by CtpA is conserved in photosynthetic organisms. It is possible that among other factors CtpA developed this function to initiate the formation of the oxygenic D1/D2 type PSII complex during evolution whereas CtpB or CtpC have other roles that are still unclear.
format Online
Article
Text
id pubmed-8121967
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher Frontiers Media S.A.
record_format MEDLINE/PubMed
spelling pubmed-81219672021-05-16 Diverged Early From CtpB and CtpC, CtpA Has Evolved to Process D1 Precursor in Oxygenic Photosynthetic Organisms Chang, Weidong Li, Chenggang Cui, Zheng Li, Wei Song, Haifeng Chang, Han Fu, Weihan Wang, Chunyu Huang, Ting Luo, Yixin Shan, Yelin Wang, Yuhua Wang, Fei Xu, Min Fu, Aigen Front Plant Sci Plant Science C-terminal peptidase (Ctp) cleaves the C-terminal extension of the D1 precursor (pD1) to form mature D1. Among the three homologs CtpA, CtpB, and CtpC in photosynthetic organisms only the first is capable of processing pD1 while the roles of CtpB and CtpC remain elusive. Phylogenetic analysis of Ctps from photosynthetic organisms revealed that CtpA has diverged early from CtpB and CtpC during evolution implying distinct roles for the Ctps. Analysis of Arabidopsis Ctp-deficient mutants revealed that pD1 processing was not affected in atctpb, atctpc, or atctpbatctpc mutants, demonstrating that AtCtpA, not AtCtpB or AtCtpC, is responsible for cleaving the pD1 C-terminal extension. Ectopic expression of CtpAs from Synechococcus elongatus, Chlamydomonas reinhardtii, and Physcomitrella patens in atctpa rescued the lethal phenotype of the mutant indicating that SeCtpA, CrCtpA, and PpCtpA could process pD1 in Arabidopsis. Enzyme activity assays showed that PpCtpA and CrCtpA could convert pD1 into mature D1 in vitro. In contrast, expressing CtpB or CtpC from Arabidopsis, C. reinhardtii, or P. patens in atctpa did not rescue its D1 maturation deficiency, and enzyme activity assays also showed that neither CtpB nor CtpC could process pD1 in vitro. Taken together, we conclude that the function of pD1 processing by CtpA is conserved in photosynthetic organisms. It is possible that among other factors CtpA developed this function to initiate the formation of the oxygenic D1/D2 type PSII complex during evolution whereas CtpB or CtpC have other roles that are still unclear. Frontiers Media S.A. 2021-04-30 /pmc/articles/PMC8121967/ /pubmed/34002114 http://dx.doi.org/10.3389/fpls.2021.676036 Text en Copyright © 2021 Chang, Li, Cui, Li, Song, Chang, Fu, Wang, Huang, Luo, Shan, Wang, Wang, Xu and Fu. 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
Chang, Weidong
Li, Chenggang
Cui, Zheng
Li, Wei
Song, Haifeng
Chang, Han
Fu, Weihan
Wang, Chunyu
Huang, Ting
Luo, Yixin
Shan, Yelin
Wang, Yuhua
Wang, Fei
Xu, Min
Fu, Aigen
Diverged Early From CtpB and CtpC, CtpA Has Evolved to Process D1 Precursor in Oxygenic Photosynthetic Organisms
title Diverged Early From CtpB and CtpC, CtpA Has Evolved to Process D1 Precursor in Oxygenic Photosynthetic Organisms
title_full Diverged Early From CtpB and CtpC, CtpA Has Evolved to Process D1 Precursor in Oxygenic Photosynthetic Organisms
title_fullStr Diverged Early From CtpB and CtpC, CtpA Has Evolved to Process D1 Precursor in Oxygenic Photosynthetic Organisms
title_full_unstemmed Diverged Early From CtpB and CtpC, CtpA Has Evolved to Process D1 Precursor in Oxygenic Photosynthetic Organisms
title_short Diverged Early From CtpB and CtpC, CtpA Has Evolved to Process D1 Precursor in Oxygenic Photosynthetic Organisms
title_sort diverged early from ctpb and ctpc, ctpa has evolved to process d1 precursor in oxygenic photosynthetic organisms
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8121967/
https://www.ncbi.nlm.nih.gov/pubmed/34002114
http://dx.doi.org/10.3389/fpls.2021.676036
work_keys_str_mv AT changweidong divergedearlyfromctpbandctpcctpahasevolvedtoprocessd1precursorinoxygenicphotosyntheticorganisms
AT lichenggang divergedearlyfromctpbandctpcctpahasevolvedtoprocessd1precursorinoxygenicphotosyntheticorganisms
AT cuizheng divergedearlyfromctpbandctpcctpahasevolvedtoprocessd1precursorinoxygenicphotosyntheticorganisms
AT liwei divergedearlyfromctpbandctpcctpahasevolvedtoprocessd1precursorinoxygenicphotosyntheticorganisms
AT songhaifeng divergedearlyfromctpbandctpcctpahasevolvedtoprocessd1precursorinoxygenicphotosyntheticorganisms
AT changhan divergedearlyfromctpbandctpcctpahasevolvedtoprocessd1precursorinoxygenicphotosyntheticorganisms
AT fuweihan divergedearlyfromctpbandctpcctpahasevolvedtoprocessd1precursorinoxygenicphotosyntheticorganisms
AT wangchunyu divergedearlyfromctpbandctpcctpahasevolvedtoprocessd1precursorinoxygenicphotosyntheticorganisms
AT huangting divergedearlyfromctpbandctpcctpahasevolvedtoprocessd1precursorinoxygenicphotosyntheticorganisms
AT luoyixin divergedearlyfromctpbandctpcctpahasevolvedtoprocessd1precursorinoxygenicphotosyntheticorganisms
AT shanyelin divergedearlyfromctpbandctpcctpahasevolvedtoprocessd1precursorinoxygenicphotosyntheticorganisms
AT wangyuhua divergedearlyfromctpbandctpcctpahasevolvedtoprocessd1precursorinoxygenicphotosyntheticorganisms
AT wangfei divergedearlyfromctpbandctpcctpahasevolvedtoprocessd1precursorinoxygenicphotosyntheticorganisms
AT xumin divergedearlyfromctpbandctpcctpahasevolvedtoprocessd1precursorinoxygenicphotosyntheticorganisms
AT fuaigen divergedearlyfromctpbandctpcctpahasevolvedtoprocessd1precursorinoxygenicphotosyntheticorganisms