SiSTL2 Is Required for Cell Cycle, Leaf Organ Development, Chloroplast Biogenesis, and Has Effects on C 4 Photosynthesis in Setaria italica (L.) P. Beauv
Deoxycytidine monophosphate deaminase (DCD) is a key enzyme in the dTTP biosynthesis pathway. Previous studies have indicated that DCD plays key roles in the maintenance of the balance of dNTP pools, cell cycle progression, and plant development. However, few studies have elucidated the functions of...
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Published in | Frontiers in plant science Vol. 9; p. 1103 |
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Main Authors | , , , , , , |
Format | Journal Article |
Language | English |
Published |
Switzerland
30.07.2018
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Subjects | |
Online Access | Get full text |
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Summary: | Deoxycytidine monophosphate deaminase (DCD) is a key enzyme in the
dTTP biosynthesis pathway. Previous studies have indicated that DCD plays key roles in the maintenance of the balance of dNTP pools, cell cycle progression, and plant development. However, few studies have elucidated the functions of the DCD gene in Panicoideae plants.
has been proposed as an ideal model of Panicoideae grasses, especially for C
photosynthesis research. Here, a
stripe leaf mutant (
) was isolated from EMS-induced lines of "Yugu1," the wild-type parent. The
mutant exhibited semi-dwarf, striped leaves, abnormal chloroplast ultrastructure, and delayed cell cycle progression compared with Yugu1. High-throughput sequencing and map-based cloning identified the causal gene
, which encodes a DCD protein. The occurrence of a single-base G to A substitution in the fifth intron introduced alternative splicing, which led to the early termination of translation. Further physiological and transcriptomic investigation indicated that
plays an essential role in the regulation of chloroplast biogenesis, cell cycle, and DNA replication, which suggested that the gene has conserved functions in both foxtail millet and rice. Remarkably, in contrast to DCD mutants in C
rice,
showed a significant reduction in leaf cell size and affected C
photosynthetic capacity in foxtail millet. qPCR showed that
had a similar expression pattern to typical C
genes in response to a low CO
environment. Moreover, the loss of function of
resulted in a reduction of leaf
C content and the enrichment of DEGs in photosynthetic carbon fixation. Our research provides in-depth knowledge of the role of DCD in the C
photosynthesis model
and proposed new directions for further study of the function of DCD. |
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ISSN: | 1664-462X 1664-462X |
DOI: | 10.3389/fpls.2018.01103 |