Journal of Agricultural Science and Technology ›› 2022, Vol. 24 ›› Issue (4): 11-20.DOI: 10.13304/j.nykjdb.2021.0497
• AGRICULTURAL INNOVATION FORUM • Previous Articles Next Articles
Tao YANG(), Xiaoqian MA, Quan ZHANG, Hongliang ZHANG(
)
Received:
2021-06-17
Accepted:
2021-08-23
Online:
2022-04-15
Published:
2022-04-19
Contact:
Hongliang ZHANG
通讯作者:
张洪亮
作者简介:
杨涛 E-mail:b20203010051@cau.edu.cn;
基金资助:
CLC Number:
Tao YANG, Xiaoqian MA, Quan ZHANG, Hongliang ZHANG. Research Progress of Histone Modification in Rice[J]. Journal of Agricultural Science and Technology, 2022, 24(4): 11-20.
杨涛, 马小倩, 张全, 张洪亮. 组蛋白修饰在水稻中的研究进展[J]. 中国农业科技导报, 2022, 24(4): 11-20.
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URL: https://nkdb.magtechjournal.com/EN/10.13304/j.nykjdb.2021.0497
组蛋白修饰类型 Histone modification type | 基因 Gene | 功能分析 Functional analysis | 参考文献Reference | |
---|---|---|---|---|
甲基化 Methylation | H3K4甲基化酶 H3K4 methylase | SDG701 | 孢子体生长发育,育性,开花 Spore growth and development, fertility, flowering | [ |
SDG721,SDG705 | GA信号,株高,细胞长度,穗分支 GA signal, plant height, cell length, panicle branch | [ | ||
H3K4去甲基化酶 H3K4 demethylase | JMJ703 | 茎秆,株高,粒型,叶角 Stem, plant height, grain type, leaf angle | [ | |
H3K9甲基化酶 H3K9 methylase | SDG714 | 基因组稳定性,毛状体发育 Genome stability, trichome development | [ | |
SDG710,SDG727 | 抑制逆转座子的转座 Inhibition of transposition of retrotransposons | [ | ||
SDG723 | 抽穗期 Heading date | [ | ||
H3K9去甲基化酶 H3K9 demethylase | JMJ706 | 花器官发育Floral organ development | [ | |
JMJ704 | 细菌枯萎病抗性Bacterial fusarium wilt resistance | [ | ||
H3K27甲基化酶 H3K27 methylase | SDG711 | 花序形状,抽穗期Inflorescence shape, heading date | [ | |
H3K27去甲基化酶 H3K27 demethylase | JMJ705 | 抗病性,茉莉酸信号Disease resistance, Jasmonic acid signal | [ | |
H3K36甲基化酶 H3K36 methylase | SDG708 | 抗旱性,抽穗期Drought resistance, heading date | [ | |
SDG724 | 光周期,抽穗期Photoperiod, heading date | [ | ||
SDG725 | 抽穗期Heading date | [ | ||
乙酰化 Acetylation | 乙酰化酶 Acetylase | HAT1 | 粒重,产量Grain weight, yield | [ |
GCN5 | 不定根,节间发育Adventitious roots, internode development | [ | ||
HDA704 | 株高,旗叶Plant height, flag leaf | [ | ||
HDA710 | 耐盐性,种子萌发,根生长Salt tolerance, seed germination, root growth | [ | ||
HDA716 | 种子萌发,根生长Seed germination, root growth | [ | ||
HDT702 | 叶片和茎发育Leaf and stem development | [ | ||
SRT1 | 氧化胁迫,细胞生长,胚乳发育Oxidative stress, cell growth, endosperm development | [ | ||
HDT1 | 抗病性,抽穗期,耐盐性Disease resistance, heading stage, salt tolerance | [ | ||
HDAC10 | 株高,结实率,耐盐性,发芽率Plant height, seed setting rate, salt tolerance, germination rate | [ | ||
去乙酰化酶 Deacetylase | HDA705 | 非生物胁迫,株高,结实率,发芽率Abiotic stress, plant height, seed setting rate, germination rate | [ | |
HDAC1 | 根长度Root length | [ | ||
HDAC2 | 抽穗期Heading date | [ | ||
HDA703 | 花序梗伸长,育性,抽穗期 Peduncle elongated, fertility,heading date | [ | ||
单泛素化 Mononbiguitination | 单泛素化酶 Monoubiquitinase | HUB1,HUB2 | 株高,分蘖数,育性Plant height, tiller number, fertility | [ |
Table 1 Part of cloned histone modification genes in rice
组蛋白修饰类型 Histone modification type | 基因 Gene | 功能分析 Functional analysis | 参考文献Reference | |
---|---|---|---|---|
甲基化 Methylation | H3K4甲基化酶 H3K4 methylase | SDG701 | 孢子体生长发育,育性,开花 Spore growth and development, fertility, flowering | [ |
SDG721,SDG705 | GA信号,株高,细胞长度,穗分支 GA signal, plant height, cell length, panicle branch | [ | ||
H3K4去甲基化酶 H3K4 demethylase | JMJ703 | 茎秆,株高,粒型,叶角 Stem, plant height, grain type, leaf angle | [ | |
H3K9甲基化酶 H3K9 methylase | SDG714 | 基因组稳定性,毛状体发育 Genome stability, trichome development | [ | |
SDG710,SDG727 | 抑制逆转座子的转座 Inhibition of transposition of retrotransposons | [ | ||
SDG723 | 抽穗期 Heading date | [ | ||
H3K9去甲基化酶 H3K9 demethylase | JMJ706 | 花器官发育Floral organ development | [ | |
JMJ704 | 细菌枯萎病抗性Bacterial fusarium wilt resistance | [ | ||
H3K27甲基化酶 H3K27 methylase | SDG711 | 花序形状,抽穗期Inflorescence shape, heading date | [ | |
H3K27去甲基化酶 H3K27 demethylase | JMJ705 | 抗病性,茉莉酸信号Disease resistance, Jasmonic acid signal | [ | |
H3K36甲基化酶 H3K36 methylase | SDG708 | 抗旱性,抽穗期Drought resistance, heading date | [ | |
SDG724 | 光周期,抽穗期Photoperiod, heading date | [ | ||
SDG725 | 抽穗期Heading date | [ | ||
乙酰化 Acetylation | 乙酰化酶 Acetylase | HAT1 | 粒重,产量Grain weight, yield | [ |
GCN5 | 不定根,节间发育Adventitious roots, internode development | [ | ||
HDA704 | 株高,旗叶Plant height, flag leaf | [ | ||
HDA710 | 耐盐性,种子萌发,根生长Salt tolerance, seed germination, root growth | [ | ||
HDA716 | 种子萌发,根生长Seed germination, root growth | [ | ||
HDT702 | 叶片和茎发育Leaf and stem development | [ | ||
SRT1 | 氧化胁迫,细胞生长,胚乳发育Oxidative stress, cell growth, endosperm development | [ | ||
HDT1 | 抗病性,抽穗期,耐盐性Disease resistance, heading stage, salt tolerance | [ | ||
HDAC10 | 株高,结实率,耐盐性,发芽率Plant height, seed setting rate, salt tolerance, germination rate | [ | ||
去乙酰化酶 Deacetylase | HDA705 | 非生物胁迫,株高,结实率,发芽率Abiotic stress, plant height, seed setting rate, germination rate | [ | |
HDAC1 | 根长度Root length | [ | ||
HDAC2 | 抽穗期Heading date | [ | ||
HDA703 | 花序梗伸长,育性,抽穗期 Peduncle elongated, fertility,heading date | [ | ||
单泛素化 Mononbiguitination | 单泛素化酶 Monoubiquitinase | HUB1,HUB2 | 株高,分蘖数,育性Plant height, tiller number, fertility | [ |
1 | BERGER S L, KOUZARIDES T, SHIEKHATTAR R, et al.. An operational definition of epigenetics [J]. Genes Dev., 2009, 23(7):781-783. |
2 | KORNBERG R D, LORCH Y. Twenty-five years of the nucleosome, fundamental particle of the eukaryote chromosome [J]. Cell, 1999, 98(3):285-294. |
3 | LOIDL P. A plant dialect of the histone language [J]. Trends Plant Sci., 2004, 9(2):84-90. |
4 | KOUZARIDES T. Chromatin modifications and their function [J]. Cell, 2007, 128(4):693-705. |
5 | BHAUMIK S R, SMITH E, SHILATIFARD A. Covalent modifications of histones during development and disease pathogenesis [J]. Nat. Struct. Mol. Biol., 2007, 14(11):1008-1016. |
6 | SANTOS-ROSA H, SCHNEIDER R, BANNISTER A J, et al.. Active genes are tri-methylated at K4 of histone H3 [J]. Nature, 2002, 419(6905):407-411. |
7 | GREWAL S I S, MOAZED D. Heterochromatin and epigenetic control of gene expression [J]. Science, 2003, 301(5634):798-802. |
8 | MARTIN C, ZHANG Y. The diverse functions of histone lysine methylation [J]. Nat. Rev. Mol. Cell Biol., 2005, 6(11):838-849. |
9 | KOUZARIDES T. Chromatin modifications and their function [J]. Cell, 2007, 128(4):693-705. |
10 | SHI Y, FEI L, MATSON C, et al.. Histone demethylation mediated by the nuclear amine oxidase homolog LSD1 [J]. Cell, 2004, 119(7):941-953. |
11 | SUN Q, ZHOU D X. Rice jmjC domain-containing gene JMJ706 encodes H3K9 demethylase required for floral organ development [J]. Proc. Natl. Acad. Sci. USA, 2008, 105(36):13679-13684. |
12 | MICHAEL F, ZOYA A. ATX1/AtCOMPASS and the H3K4me3 marks: how do they activate Arabidopsis genes? [J]. Curr. Opin. Plant Biol., 2014, 21:75-82. |
13 | QIN F J, SUN Q W, HUANG L M, et al.. Rice SUVH histone methyltransferase genes display specific functions in chromatin modification and retrotransposon repression [J]. Mol. Plant, 2010, 3(4):773-782. |
14 | LI B, CAREY M, WORKMAN J L. The role of chromatin during transcription [J]. Cell, 2007, 128(4):707-719. |
15 | JIANG D, WANG Y, WANG Y, et al.. Repression of FLOWERING LOCUS C and FLOWERING LOCUS T by the Arabidopsis polycomb repressive complex 2 components [J/OL]. PLoS One, 2008, 3(10): e3404 [2020-06-15]. . |
16 | BLANC R S, RICHARD S. Arginine methylation: the coming of age [J]. Mol. Cell, 2017, 65(1):8-24. |
17 | YANG Y, MCBRIDE K, HENSLEY S, et al.. Arginine methylation facilitates the recruitment of TOP3B to chromatin to prevent R loop accumulation [J]. Mol. Cell, 2014, 53(3):484-497. |
18 | YANG Y, BEDFORD M T. Protein arginine methyltransferases and cancer [J]. Nat. Rev. Cancer, 2013, 13(1):37-50. |
19 | AHMAD A, YONG Z, CAO X F. Decoding the epigenetic language of plant development [J]. Mol. Plant, 2010, 3(4):719-728. |
20 | AHMAD A, CAO X. Plant PRMTs broaden the scope of arginine methylation [J]. J. Genet. Genomics, 2012, 39(5):195-208. |
21 | PEI Y X, NIU L F, LU F L, et al.. Mutations in the type Ⅱ protein arginine methyltransferase AtPRMT5 result in pleiotropic developmental defects in Arabidopsis [J]. Plant Physiol., 2007, 144:1913-1923. |
22 | WANG X, ZHANG Y, MA Q B, et al.. SKB1-mediated symmetric dimethylation of histone H4R3 controls flowering time in Arabidopsis [J]. EMBO J., 2007, 26:1934-1941. |
23 | SCHMITZ RJ, SUNG S, AMASINO RM. Histone arginine methylation is required for vernalization-induced epigenetic silencing of FLC in winter-annual Arabidopsis thaliana [J]. Proc. Natl. Acad. Sci. USA, 2008, 105:411-416. |
24 | LIU H, MA X, HAN H N, et al.. AtPRMT5 regulates shoot regeneration through mediating histone H4R3 dimethylation on KRPs and Pre-mRNA splicing of RKP in Arabidopsis [J]. Mol. Plant, 2016(12):1634-1646. |
25 | AHMAD A, DONG Y Z, CAO X F. Characterization of the PRMT gene family in rice reveals conservation of arginine methylation [J/OL]. PLoS One, 2011, 6(8): e22664 [2021-06-15]. |
26 | LEE K K, WORKMAN J L. Histone acetyltransferase complexes: one size doesn't fit all [J]. Nat. Rev. Mol. Cell Biol., 2007, 8:284-295. |
27 | AKATSUKI K, KAZUKO M, MASAMI H. A decade of histone acetylation: marking eukaryotic chromosomes with specific codes [J]. J. Biochem., 2005(6):647-662. |
28 | KLEFF S, ANDRULIS E D, ANDERSON C W, et al.. Identification of a gene encoding a yeast histone H4 acetyltransferase [J]. J. Biol. Chem., 1995, 270(42):24674-24677. |
29 | GRANT P A, DUGGAN L, COTE J, et al.. Yeast Gcn5 functions in two multisubunit complexes to acetylate nucleosomal histones: characterization of an Ada complex and the SAGA (Spt/Ada) complex [J]. Genes Dev., 1997, 11(13):1640-1650. |
30 | WANG L, DENT S Y. Functions of SAGA in development and disease [J]. Epigenomics, 2014, 6(3):329-339. |
31 | WEAKE V M, WORKMAN J L. SAGA function in tissue-specific gene expression [J]. Trends Cell Biol., 2012, 22(4):177-184. |
32 | PANDEY R, MÜLLER A, NAPOLI C A, et al.. Analysis of histone acetyltransferase and histone deacetylase families of Arabidopsis thaliana suggests functional diversification of chromatin modification among multicellular eukaryotes [J]. Nucl. Acids Res., 2002, 30(23):5036-5055. |
33 | LUSSER A, BROSCH G, LOIDL A, et al.. Identification of maize histone deacetylase HD2 as an acidic nucleolar phosphoprotein [J]. Science, 1997, 277:88-91. |
34 | CIELA J, FRCZYK T, RODE W. Phosphorylation of basic amino acid residues in proteins: important but easily missed [J]. Acta Biochim. Pol., 2011, 58(2):137-148. |
35 | FISCHLEWOLFGANG. Molecular mechanisms of histone modification function [J]. Biochim. Biophys. Acta, 2014, 1839:621-622. |
36 | HAY R T. SUMO: A history of modification [J]. Mol. Cell, 2005, 18(1):1-12. |
37 | MENG X X, BAINE J M, YAN T C, et al.. Comprehensive analysis of lysine lactylation in Rice (Oryza sativa) grains [J/OL]. J. Agric. Food Chem., 2021, 1c00760 [2021-06-15]. . |
38 | LIU K P, YU Y, DONG A W, et al.. SET DOMAIN GROUP701 encodes a H3K4-methytransferase and regulates multiple key processes of rice plant development [J]. New Phytol., 2017, 215(2):609-623. |
39 | JIANG P, WANG S, IKRAM A U, et al.. SDG721 and SDG705 are required for rice growth [J]. J. Integr. Plant Biol., 2018, 60(7):530-535. |
40 | LIU X, ZHOU S, WANG W, et al.. Regulation of histone methylation and reprogramming of gene expression in the rice inflorescence meristem [J]. Plant Cell, 2015, 27(5):1428-1444. |
41 | CUI X K, JIN P, CUI X, et al.. Control of transposon activity by a histone H3K4 demethylase in rice [J]. Proc. Natl. Acad. Sci. USA, 2013, 110(5):1953-1958. |
42 | DING Y, WANG X, SU L, et al.. SDG714, a histone H3K9 methyltransferase, is involved in Tos17 DNA methylation and transposition in rice [J]. Plant Cell, 2007, 19(1):9-22. |
43 | LIU X, ZHOU S, WANG W, et al.. Regulation of histone methylation and reprogramming of gene expression in the rice inflorescence meristem [J]. Plant Cell, 2015, 27(5):1428-1444. |
44 | LUO M, PLATTEN D, CHAUDHURY A, et al.. Expression, imprinting, and evolution of rice homologs of the polycomb group genes [J]. Mol. Plant, 2009, 2(4):711-723. |
45 | CHOI S C, LEE S Y, KIM S R, et al.. Trithorax group protein Oryza sativa Trithorax1 controls flowering time in rice via interaction with early heading date3 [J]. Plant Physiol., 2014, 164(3):1326-1337. |
46 | JIANG P F, WANG S L, JIANG H Y, et al.. The COMPASS-Like complex promotes flowering and panicle branching in rice [J]. Plant Physiol., 2018,176(4):2761-2771. |
47 | HOU Y X, WANG L Y, WANG L, et al.. JMJ 704 positively regulates rice defense response against Xanthomonas oryzae pv. Oryzae infection via reducing H3K4me2/3 associated with negative disease resistance regulators [J/OL]. BMC Plant Biol., 2015, 15(1):286 [2021-06-15]. . |
48 | LIU X, LUO J, LI T, et al.. SDG711 is involved in rice seed development through regulation of starch metabolism gene expression in coordination with other histone modifications [J]. Rice, 2021,14(1):1-13. |
49 | LIU X, ZHOU C, ZHAO Y, et al.. The rice enhancer of zeste [E(z)] genes SDG711 and SDG718 are respectively involved in long day and short day signaling to mediate the accurate photoperiod control of flowering time [J/OL]. Front. Plant Sci., 2014, 5:591 [2021-06-15]. |
50 | LI T, CHEN X, ZHONG X, et al.. Jumonji C domain protein JMJ705-Mediated removal of histone H3 lysine 27 trimethylation is involved in defense-related gene activation in rice [J]. Plant Cell, 2013, 25(11):4725-4736. |
51 | LIU B, WEI G SHI J L, et al.. SET DOMAIN GROUP 708, a histone H3 lysine 36-specific methyltransferase, controls flowering time in rice (Oryza sativa) [J]. New Phytol., 2016, 210 (2):577-588. |
52 | CHEN K, DU K X, SHI Y C, et al.. H3K36 methyltransferase SDG708 enhances drought tolerance by promoting abscisic acid biosynthesis in rice [J]. New Phytol., 2021, 230(5):1967-1984. |
53 | SUN C H, FANG J, ZHAO T L, et al.. The histone methyltransferase SDG724 mediates H3K36me2/3 deposition at MADS50 and RFT1 and Promotes flowering in rice [J]. Plant Cell, 2012, 24(8):3235-3247. |
54 | LIU B, LIU Y H, WANG B H, et al.. The transcription factor OsSUF4 interacts with SDG725 in promoting H3K36me3 establishment [J/OL]. Nat. Commun., 2019, 10(1):2999[2021-06-15]. . |
55 | SONG X J, KUROHA T, AYANO M, et al.. Rare allele of a previously unidentified histone H4 acetyltransferase enhances grain weight, yield, and plant biomass in rice[J]. Proc. Natl. Acad. Sci. USA, 2015, 112(1):76-81. |
56 | ZHOU S L, JIANG W, LONG F, et al.. Rice homeodomain protein WOX11 recruits a histone acetyltransferase complex to establish programs of cell proliferation of crown root meristem [J]. Plant Cell, 2017, 29(5):1088-1104. |
57 | HU Y F, QIN F J, HUANG L M, et al.. Rice histone deacetylase genes display specific expression patterns and developmental functions[J]. Biochem. Biophys. Res. Commun., 2009, 388(2):266-271. |
58 | ZHANG H, GUO F, QI P, et al.. OsHDA710-mediated histone deacetylation regulates callus formation of rice mature embryo [J]. Plant Cell Physiol., 2020, 61(9):1646-1660. |
59 | ULLAH F, XU Q, ZHAO Y, et al.. Histone deacetylase HDA710 controls salt tolerance by regulating ABA signaling in rice [J]. J. Intergr. Plant Biol., 2021, 63:451-467. |
60 | ZHANG H, LU Y, YU Z, et al.. OsSRT1 is involved in rice seed development through regulation of starch metabolism gene expression [J]. Plant Sci., 2016, 248:28-36. |
61 | FANG C Y, ZHANG H, WAN J, et al.. Control of leaf senescence by a MeOH-jasmonates cascade that is epigenetically regulated by OsSRT1 in rice [J]. Mol. Plant, 2016, 9(10):1366-1378. |
62 | LI C, HUANG L M, XU C G, et al.. Altered levels of histone deacetylase OsHDT1 affect differential gene expression patterns in hybrid rice [J/OL]. PLoS ONE, 2011, 6(7): e21789 [2021-06-15]. . |
63 | WEI H, WANG X L, HE Y Q, et al.. Clock component OsPRR 73 positively regulates rice salt tolerance by modulating OsHKT2;1 mediated sodium homeostasis [J/OL]. EMBO J., 2020, 40(3):86 [2021-06-15]. . |
64 | XU Q T, LIU Q, CHEN Z T, et al.. Histone deacetylases control lysine acetylation of ribosomal proteins in rice [J]. Nucleic Acids Res., 2021, 49(8):4613-4628. |
65 | ZHAO J H, LI M Z, GU D C, et al.. Involvement of rice histone deacetylase HDA705 in seed germination and in response to ABA and abiotic stresses [J]. Biochem. Biophys. Res. Commun., 2016, 470(2):439-444. |
66 | CHUNG P J, KIM Y S, JIN S J, et al.. The histone deacetylase OsHDAC1 epigenetically regulates the OsNAC6 gene that controls seedling root growth in rice [J]. Plant J., 2010, 59(5):764-776. |
67 | GENG Y K, ZHANG P X, LIU Q, et al.. Rice homolog of Sin3-associated polypeptide 30, OsSFL1, mediates histone deacetylation to regulate flowering time during short days [J]. Plant Biotechnol. J., 2020, 18(2):325-327. |
68 | WANG H C, JIAO X M, KONG X Y, et al.. The histone deacetylase HDA703 interacts with OsBZR1 to regulate rice brassinosteroid signaling, growth and heading date through repression of Ghd7 expression [J]. Plant J., 2020, 104(2):447-459. |
69 | CAO H, LI X Y, WANG Z, et al.. Histone H2B monoubiqui-tination mediated by HISTONE MONOUBIQUITINATION1 and HISTONE MONOUBIQUITINATION2 is involved in anther development by regulating tapetum degradation-related genes in rice [J]. Plant Physiol., 2015, 168(4):1389-1405. |
70 | WU K, WANG S S, SONG W Z, et al.. Enhanced sustainable green revolution yield via nitrogen-responsive chromatin modulation in rice [J/OL]. Science, 2020, 367(6478):2046 [2021-06-15]. |
71 | YOON J, CHO L H, LEE S, et al.. Chromatin interacting factor OsVIL2 is required for outgrowth of axillary buds in rice [J]. Mol. Cells, 2019, 42(12):858-868. |
72 | JIN J, SHI J L, LIU B, et al.. MORF-RELATED GENE702, a reader protein of trimethylated histone H3 lysine 4 and histone H3 lysine 36, is involved in brassinosteroid-regulated growth and flowering time control in rice [J]. Plant Physiol., 2015,168(4):1275-1285. |
73 | DU Y W, HE W, DENG C W, et al.. Flowering-related RING Protein 1 (FRRP1) regulates flowering time and yield potential by affecting histone H2B monoubiquitination in rice (Oryza Sativa) [J/OL]. PLoS ONE, 2016, 11(3):e0150458 [2021-06-15]. . |
74 | LI Y, XIAO Y, YU X, et al.. Identification of a novel function of a component in the jasmonate signaling pathway for intensive pesticide degradation in rice and environment through an epigenetic mechanism [J/OL]. Environ. Pollut., 2020, 268: 115802 [2021-06-15]. . |
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