MicroRNA in Stress Resistance Characters of Rice: Research Progress

Zhang Ziyi

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Journal of Agriculture ›› 2020, Vol. 10 ›› Issue (11) : 1-6. DOI: 10.11923/j.issn.2095-4050.cjas20190700142

MicroRNA in Stress Resistance Characters of Rice: Research Progress

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Abstract

microRNAs are a group of newly discovered genetic materials and play an important role in rice stress resistance. In order to further research the functions of miRNA in rice stress resistance, this study reviewed the role of miRNAs in drought resistance, cold injury resistance, disease and insect pest resistance, and heavy metal resistance of rice, and summarized the mechanism of some miRNAs that regulated rice resistance. It is found that there are still lots of miRNAs that have not been detected, and many functional mechanisms of the known miRNAs have not been clarified. miRNAs are one of the effective means of gene regulation, and their reasonable and feasible application in rice stress resistance breeding still needs more exploration.

Key words

microRNA / Resistance of Rice / Abiotic Stress / Target Genes / Transcriptome

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Zhang Ziyi. MicroRNA in Stress Resistance Characters of Rice: Research Progress. Journal of Agriculture. 2020, 10(11): 1-6 https://doi.org/10.11923/j.issn.2095-4050.cjas20190700142

References

[1]
吴美婷, 杨晓玉, 罗淋淋, 等. 植物microRNA响应非生物胁迫研究进展[J]. 广东农业科学, 2018,45(03):69-80.
[2]
孙其信. 作物育种学[M]. 北京: 高等教育出版社, 2011: 345-347.
[3]
汤洪, 吕浩正, 杨通洲, 等. 影响水稻结实率的因素及预防对策[J]. 湖南农业科学, 2013(08):17-18,21.
[4]
吴华. 水稻JAZ家族抗逆相关基因的鉴定和功能分析[D]. 武汉:华中农业大学, 2015.
[5]
符德保, 李燕, 肖景华, 等. 中国水稻基因组学研究历史及现状[J]. 生命科学, 2016,28(10):1113-1121.
[6]
Chen W, Gong L, Guo Z, et al. A novel integrated method for large-scale detection, identification and quantification of widely-targeted metabolites: application in study of rice metabolomics[J]. Mol Plant, 2013,6:1769-80.
Liquid chromatography-mass spectrometry (LC-MS)-based metabolomics has been facilitated by the construction of MS2 spectral tag (MS2T) library from the total scan ESI MS/MS data, and the development of widely targeted metabolomics method using MS/MS data gathered from authentic standards. In this report, a novel strategy called stepwise multiple ion monitoring-enhanced product ions (stepwise MIM-EPI) was developed to construct the MS2T library, in which stepwise MIM was used as survey scans to trigger the acquisition of EPI. A total number of 698 (almost) non-redundant metabolites with MS2 spectra were obtained, of which 135 metabolites were identified/annotated. Integrating the data gathered from our MS2T library and other available multiple reaction monitoring (MRM) information, a widely targeted metabolomics method was developed to quantify 277 metabolites, including some phytohormones. Evaluation of the dehydration responses and natural variations of these metabolites in rice leaf not only suggested the coordinated regulation of abscisic acid (ABA) with metabolites such as serotonin derivative(s), polyamine conjugates under drought stress, but also revealed some C-glycosylated flavones as the potential markers for the discrimination of indica and japonica rice subspecies. The new MS2T library construction and widely targeted metabolomics strategy could be used as a tool for rice functional genomics.
[7]
Chen W, Gao Y, Xie W, et al. Genome-wide association analyses provide genetic and biochemical insights into natural variation in rice metabolism[J]. Nat Genet, 2014,46:714-21.
Plant metabolites are important to world food security in terms of maintaining sustainable yield and providing food with enriched phytonutrients. Here we report comprehensive profiling of 840 metabolites and a further metabolic genome-wide association study based on approximately 6.4 million SNPs obtained from 529 diverse accessions of Oryza sativa. We identified hundreds of common variants influencing numerous secondary metabolites with large effects at high resolution. We observed substantial heterogeneity in the natural variation of metabolites and their underlying genetic architectures among different subspecies of rice. Data mining identified 36 candidate genes modulating levels of metabolites that are of potential physiological and nutritional importance. As a proof of concept, we functionally identified or annotated five candidate genes influencing metabolic traits. Our study provides insights into the genetic and biochemical bases of rice metabolome variation and can be used as a powerful complementary tool to classical phenotypic trait mapping for rice improvement.
[8]
Du H, Wang N, Cui F, et al. Characterization of the β-carotene hydroxylase gene DSM2 conferring drought and oxidative stress resistance by increasing xanthophylls and abscisic acid synjournal in rice[J]. Plant Physiol, 2010,154:1304-1318.
Drought is a major limiting factor for crop production. To identify critical genes for drought resistance in rice (Oryza sativa), we screened T-DNA mutants and identified a drought-hypersensitive mutant, dsm2. The mutant phenotype was caused by a T-DNA insertion in a gene encoding a putative beta-carotene hydroxylase (BCH). BCH is predicted for the biosynthesis of zeaxanthin, a carotenoid precursor of abscisic acid (ABA). The amounts of zeaxanthin and ABA were significantly reduced in two allelic dsm2 mutants after drought stress compared with the wild type. Under drought stress conditions, the mutant leaves lost water faster than the wild type and the photosynthesis rate, biomass, and grain yield were significantly reduced, whereas malondialdehyde level and stomata aperture were increased in the mutant. The mutant is also hypersensitive to oxidative stresses. The mutant had significantly lower maximal efficiency of photosystem II photochemistry and nonphotochemical quenching capacity than the wild type, indicating photoinhibition in photosystem II and decreased capacity for eliminating excess energy by thermal dissipation. Overexpression of DSM2 in rice resulted in significantly increased resistance to drought and oxidative stresses and increases of the xanthophylls and nonphotochemical quenching. Some stress-related ABA-responsive genes were up-regulated in the overexpression line. DSM2 is a chloroplast protein, and the response of DSM2 to environmental stimuli is distinctive from the other two BCH members in rice. We conclude that the DSM2 gene significantly contributes to control of the xanthophyll cycle and ABA synthesis, both of which play critical roles in the establishment of drought resistance in rice.
[9]
Yaish M W, El-Kereamy A, Zhu T, et al. The APETALA-2-like transcription factor Os AP2-39 controls key interactions between abscisic acid and gibberellin in rice[J]. PLo S Genet, 2010,6:e1001098.
[10]
肖景华, 吴昌银, 袁猛, 等. 中国水稻功能基因组研究进展与展望[J]. 科学通报, 2015. 60(18):1711-1723.
[11]
唐丁, 吕慧颖, 王珏, 等. 作物基因组学研究进展[J]. 植物遗传资源学报, 2018,19(03):383-389.
[12]
安明. 玉米microRNA159和microRNA168在干旱胁迫下的差异表达[D]. 成都:四川农业大学, 2011.
[13]
盛亮. 植物非生物逆境下miRNA分子调控网络数据库的构建及其在茶树中的应用[D]. 合肥:安徽农业大学, 2013.
[14]
吕明芳. 水稻miR156基因克隆及其功能初步分析[D]. 杭州:浙江师范大学, 2011.
[15]
Li C, Wang G, Zhao J, et al. The receptor-like kinase SIT1mediates salt sensitivity by activating MAPK3/6 and regulating ethylene homeostasis in rice[J]. Plant Cell, 2014,26:2538-53.
High salinity causes growth inhibition and shoot bleaching in plants that do not tolerate high salt (glycophytes), including most crops. The molecules affected directly by salt and linking the extracellular stimulus to intracellular responses remain largely unknown. Here, we demonstrate that rice (Oryza sativa) Salt Intolerance 1 (SIT1), a lectin receptor-like kinase expressed mainly in root epidermal cells, mediates salt sensitivity. NaCl rapidly activates SIT1, and in the presence of salt, as SIT1 kinase activity increased, plant survival decreased. Rice MPK3 and MPK6 function as the downstream effectors of SIT1. SIT1 phosphorylates MPK3 and 6, and their activation by salt requires SIT1. SIT1 mediates ethylene production and salt-induced ethylene signaling. SIT1 promotes accumulation of reactive oxygen species (ROS), leading to growth inhibition and plant death under salt stress, which occurred in an MPK3/6- and ethylene signaling-dependent manner in Arabidopsis thaliana. Our findings demonstrate the existence of a SIT1-MPK3/6 cascade that mediates salt sensitivity by affecting ROS and ethylene homeostasis and signaling. These results provide important information for engineering salt-tolerant crops.
[16]
马风勇, 朱永兴, 石晓霞, 等. 植物miRNA抗逆性研究进展[J]. 西北农林科技大学学报:自然科学版, 2012,40(05):217-223.
[17]
Schauer S E, Jacobsen S E, Meinke D W, et al. DICER-LIKE1: blind men and elephants in Arabidopsis development[J]. Trends in Plant Science, 2002.
Crop domestication and breeding considerably increased productivity over centuries but unconsciously lowered 'selfish plant behavior' or individual plant fitness. Paradoxically, enhancing individual plant fitness is mistakenly equated with crop improvement. Because agriculture relies on community performance, embracing an agroecological genetics and genomics viewpoint might maximize communal yield by matching crop genotypes to target environments.
[18]
周立国. 水稻水分胁迫相关基因克隆及功能验证[D]. 武汉:华中农业大学, 2010.
[19]
Zhao B, Liang R, Ge L, et al. Identification of drought-induced microRNAs in rice[J]. Biochemical and Biophysical Research Communications, 2007,354(2):585-590.
MicroRNAs (miRNAs) are a large new class of small non-coding RNAs. To date, hundreds of microRNAs have been identified in plants. MicroRNAs play important roles in post-transcriptional gene regulation by targeting mRNAs for cleavage or repressing translation. To better understand microRNA function, we have used an oligonucleotide microarray to monitor rice (Oryza sativa) microRNA expression profile under drought stress. Two drought-induced microRNAs were identified. Furthermore, miR-169g was confirmed as the only member induced by drought among the miR-169 family and the induction of miR-169g was more prominent in roots than in shoots. Sequence analysis revealed occurrence of two proximate DREs (dehydration-responsive element) in the upstream of the MIR-169g, suggesting that miR-169g expression may be regulated directly by CBF/DREBs.
[20]
高鹏. 水稻冷胁迫相关miRNA基因的预测及冷胁迫相关性验证[D]. 哈尔滨:东北农业大学, 2008.
[21]
Sunkar R, Chinnusamy V, ZHU J K, et al. Small RNAs as big players in plant abiotic stress responses and nutrient deprivation[J]. Trends in Plant Science, 2007,21(7):301-309.
[22]
Jain M, Nijhawan A, Arora R, et al. F-box proteins in rice. Genome-wide analysis, classification, temporal and spatial gene expression during panicle and seed development, and regulation by light and abiotic stress[J]. Plant Physiol, 2007,143(4):1467-1483.
F-box proteins constitute a large family in eukaryotes and are characterized by a conserved F-box motif (approximately 40 amino acids). As components of the Skp1p-cullin-F-box complex, F-box proteins are critical for the controlled degradation of cellular proteins. We have identified 687 potential F-box proteins in rice (Oryza sativa), the model monocotyledonous plant, by a reiterative database search. Computational analysis revealed the presence of several other functional domains, including leucine-rich repeats, kelch repeats, F-box associated domain, domain of unknown function, and tubby domain in F-box proteins. Based upon their domain composition, they have been classified into 10 subfamilies. Several putative novel conserved motifs have been identified in F-box proteins, which do not contain any other known functional domain. An analysis of a complete set of F-box proteins in rice is presented, including classification, chromosomal location, conserved motifs, and phylogenetic relationship. It appears that the expansion of F-box family in rice, in large part, might have occurred due to localized gene duplications. Furthermore, comprehensive digital expression analysis of F-box protein-encoding genes has been complemented with microarray analysis. The results reveal specific and/or overlapping expression of rice F-box protein-encoding genes during floral transition as well as panicle and seed development. At least 43 F-box protein-encoding genes have been found to be differentially expressed in rice seedlings subjected to different abiotic stress conditions. The expression of several F-box protein-encoding genes is also influenced by light. The structure and function of F-box proteins in plants is discussed in light of these results and the published information. These data will be useful for prioritization of F-box proteins for functional validation in rice.
[23]
Jeong D H, Green P J. The role of rice microRNAs in abiotic stress responses[J]. Journal of Plant Biology, 2013,56(4):187-197.
[24]
王海波, 王莎莎, 龚明. 植物miRNA的分子特征及其在逆境中的响应机制[J]. 基因组学与应用生物学, 2013,32(01):121-126.
[25]
朱子亮. 利用高通量测序方法检测水稻镉胁迫相关miRNA[D]. 长沙:湖南农业大学, 2017.
[26]
Jeong D H, Green P J. Methods for validation of miRNA sequence variants and the cleavage of their targets[J]. Methods, 2012,58:135-143
MicroRNA (miRNA) variants that share the sequences with other closely related miRNAs have been identified by deep sequencing and have been implicated in the diverse regulation of their target genes. The miRNA variants that originate from the same miRNA precursor are among the most common and have been termed "isomiRs." IsomiRs can be generated by several mechanisms such as differential processing by DICER, RNA degradation, or RNA editing. Members of the same miRNA family that have distinct sequences also contribute to the diversity of miRNA variants. Although many miRNA variants are lowly expressed and may function redundantly with their reference miRNAs, some miRNA variants are highly and/or differentially expressed. In addition, slight differences in sequence among miRNA variants can affect their specificity in target selection. Here, we describe two methods for detecting or validating miRNA variants and the target events they mediate. (C) 2012 Elsevier Inc.
[27]
朱淑华, 王庆伟, 姚民, 等. 水稻盐胁迫相关内含子microRNA的表达及其生物发生机制[J]. 中国生物化学与分子生物学报, 2017,33(03):294-302.
[28]
彭廷, 文慧丽, 赵亚帆, 等. 盐、干旱胁迫下水稻相关miRNA的鉴定及表达分析[J]. 华北农学报, 2018,33(02):20-27.
[29]
鲁玉柱. 水稻microRNA和其它相关小分子RNA的克隆鉴定[D]. 武汉:武汉大学, 2005.
[30]
Xu G M, Yang X F, Rong Z, et al. Differential Expression of miRNAs in Rice under High Temperature Stress[J]. Agric Biotechnol, 2015,4(4):6-9.
[31]
Morton T, Petricka J, Corcoran D L, et al. Paired-end analysis of transcription start sites in Arabidopsis reveals plant-specific promoter signatures[J]. Plant Cell, 2014,26(7):2746-2760.
Understanding plant gene promoter architecture has long been a challenge due to the lack of relevant large-scale data sets and analysis methods. Here, we present a publicly available, large-scale transcription start site (TSS) data set in plants using a high-resolution method for analysis of 5' ends of mRNA transcripts. Our data set is produced using the paired-end analysis of transcription start sites (PEAT) protocol, providing millions of TSS locations from wild-type Columbia-0 Arabidopsis thaliana whole root samples. Using this data set, we grouped TSS reads into "TSS tag clusters" and categorized clusters into three spatial initiation patterns: narrow peak, broad with peak, and weak peak. We then designed a machine learning model that predicts the presence of TSS tag clusters with outstanding sensitivity and specificity for all three initiation patterns. We used this model to analyze the transcription factor binding site content of promoters exhibiting these initiation patterns. In contrast to the canonical notions of TATA-containing and more broad "TATA-less" promoters, the model shows that, in plants, the vast majority of transcription start sites are TATA free and are defined by a large compendium of known DNA sequence binding elements. We present results on the usage of these elements and provide our Plant PEAT Peaks (3PEAT) model that predicts the presence of TSSs directly from sequence.
[32]
Liang G, He H, Yu D. Identification of nitrogen starvation responsive microRNAs in Arabidopsis thaliana[J]. PLoS One, 2012,7:e48951.
microRNAs (miRNAs) are a class of negative regulators that take part in many processes such as growth and development, stress responses, and metabolism in plants. Recently, miRNAs were shown to function in plant nutrient metabolism. Moreover, several miRNAs were identified in the response to nitrogen (N) deficiency. To investigate the functions of other miRNAs in N deficiency, deep sequencing technology was used to detect the expression of small RNAs under N-sufficient and -deficient conditions. The results showed that members from the same miRNA families displayed differential expression in response to N deficiency. Upon N starvation, the expression of miR169, miR171, miR395, miR397, miR398, miR399, miR408, miR827, and miR857 was repressed, whereas those of miR160, miR780, miR826, miR842, and miR846 were induced. miR826, a newly identified N-starvation-induced miRNA, was found to target the AOP2 gene. Among these N-starvation-responsive miRNAs, several were involved in cross-talk among responses to different nutrient (N, P, S, Cu) deficiencies. miR160, miR167, and miR171 could be responsible for the development of Arabidopsis root systems under N-starvation conditions. In addition, twenty novel miRNAs were identified and nine of them were significantly responsive to N-starvation. This study represents comprehensive expression profiling of N-starvation-responsive miRNAs and advances our understanding of the regulation of N homeostasis mediated by miRNAs.
[33]
Fujii H, Chiou T J, Lin S I, et al. A miRNA involved in phosphate-starvation response in Arabidopsis[J]. Curr Biol, 2005,15:2038-2043.
Although microRNAs (miRNAs) have been documented to regulate development in plants and animals , the function of miRNAs in physiology is unclear. miR399 has multiple target sites in the 5' untranslated region (UTR) of a gene encoding a putative ubiquitin-conjugating enzyme (UBC) in Arabidopsis thaliana. We report here that miR399 was highly induced, whereas the target UBC mRNA was reduced by low-phosphate (Pi) stress. In transgenic plants with constitutive expression of miR399, UBC mRNA accumulation was suppressed even under high Pi. The expression of transgene UBC mRNA with 5' UTR miR399 target sites, but not the one without 5' UTR, was reduced under low-Pi condition. Furthermore, transgenic Arabidopsis plants with constitutive expression of miR399 accumulated more Pi than the wild-type, and transgenic plants expressing the UBC mRNA without 5' UTR (miRNA-deregulated) showed less inhibition of primary root growth and less induction of a Pi transporter gene by low-Pi stress than those of wild-type plants. We conclude that miR399 downregulates UBC mRNA accumulation by targeting the 5' UTR, and this regulation is important for plant responses to Pi starvation. The results suggest that miRNAs have functional roles for plants to cope with fluctuations in mineral-nutrient availability in the soil.
[34]
Bartel D P. MicroRNAs: genomics, biogenesis, mechanism, and function[J]. Cell, 2004,116:281-297.
MicroRNAs (miRNAs) are endogenous approximately 22 nt RNAs that can play important regulatory roles in animals and plants by targeting mRNAs for cleavage or translational repression. Although they escaped notice until relatively recently, miRNAs comprise one of the more abundant classes of gene regulatory molecules in multicellular organisms and likely influence the output of many protein-coding genes.
[35]
Jeong D H, Park S, Zhai J, et al. Massive analysis of rice small RNAs: mechanistic implications of regulated microRNAs and variants for differential target RNA cleavage[J]. Plant Cell, 2011,23:4185-4207.
Small RNAs have a variety of important roles in plant development, stress responses, and other processes. They exert their influence by guiding mRNA cleavage, translational repression, and chromatin modification. To identify previously unknown rice (Oryza sativa) microRNAs (miRNAs) and those regulated by environmental stress, 62 small RNA libraries were constructed from rice plants and used for deep sequencing with Illumina technology. The libraries represent several tissues from control plants and plants subjected to different environmental stress treatments. More than 94 million genome-matched reads were obtained, resulting in more than 16 million distinct small RNA sequences. This allowed an evaluation of similar to 400 annotated miRNAs with current criteria and the finding that among these, similar to 150 had small interfering RNA-like characteristics. Seventy-six new miRNAs were found, and miRNAs regulated in response to water stress, nutrient stress, or temperature stress were identified. Among the new examples of miRNA regulation were members of the same miRNA family that were differentially regulated in different organs and had distinct sequences Some of these distinct family members result in differential target cleavage and provide new insight about how an agriculturally important rice phenotype could be regulated in the panicle. This high-resolution analysis of rice miRNAs should be relevant to plant miRNAs in general, particularly in the Poaceae.
[36]
彭建斐, 戴良英, 何玉科, 等. 水稻微小RNA研究进展[J]. 湖南农业科学, 2010(15):4-6,10.
概括了几年来国内外对水稻微小RNA(microRNA)的研究进展,在水稻中至今已经发现了400多种miRNA,大部分miRNA是通过生物信息学预测发现的,只有少数几种miRNA得到了实验验证.经研究表明,水稻miRNA和其他植物miRNA样,对调控水稻开花、分蘖、抗逆以及结实率等植物生长发育有着至关重要的作用.
[37]
张星. 水稻氮代谢相关基因的鉴定及功能研究[D]. 武汉:华中农业大学, 2013.
[38]
Inês Trindade, Cláudio Capitão, Tamas Dalmay, et al. miR398 and miR408 are up-regulated in response to water deficit in Medicago truncatula[J]. Planta, 2010(3):705-716.
[39]
Meng Y J, Huang F L, Shi Q Y, et al. Genome-wide survey of rice microRNAs and microRNA-target pairs in the root of a novel auxin-resistant mutant[J]. Planta, 2009(5):883-898.
Auxin is one of the central hormones in plants, and auxin response factor (ARF) is a key regulator in the early auxin response. MicroRNAs (miRNAs) play an essential role in auxin signal transduction, but knowledge remains limited about the regulatory network between miRNAs and protein-coding genes (e.g. ARFs) involved in auxin signalling. In this study, we used a novel auxin-resistant rice mutant with plethoric root defects to investigate the miRNA expression patterns using microarray analysis. A number of miRNAs showed reduced auxin sensitivity in the mutant compared with the wild type, consistent with the auxin-resistant phenotype of the mutant. Four miRNAs with significantly altered expression patterns in the mutant were further confirmed by Northern blot, which supported our microarray data. Clustering analysis revealed some novel auxin-sensitive miRNAs in roots. Analysis of miRNA duplication and expression patterns suggested the evolutionary conservation between miRNAs and protein-coding genes. MiRNA promoter analysis suggested the possibility that most plant miRNAs might share the similar transcriptional mechanisms with other non-plant eukaryotic genes transcribed by RNA polymerase II. Auxin response elements were proved to be more frequently present in auxin-related miRNA promoters. Comparative analysis of miRNA and protein-coding gene expression datasets uncovered many reciprocally expressed miRNA–target pairs, which could provide some hints for miRNA downstream analysis. Based on these findings, we also proposed a feedback circuit between miRNA(s) and ARF(s). The results presented here could serve as the basis for further in-depth studies of plant miRNAs involved in auxin signalling.
[40]
Xiong J, Lu H, Lu K X, et al. Cadmium decreases crown root number by decreasing endogenous nitric oxide, which is indispensable for crown root primordia initiation in rice seedlings[J]. Planta, 2009(4):599-610.
Cadmium (Cd) is toxic to crown roots (CR), which are essential for maintaining normal growth and development in rice seedlings. Nitric oxide (NO) is an important signaling molecule that plays a pivotal role in plant root organogenesis. Here, the effects of Cd on endogenous NO content and root growth conditions were studied in rice seedlings. Results showed that similar to the NO scavenger, cPTIO, Cd significantly decreased endogenous NO content and CR number in rice seedlings, and these decreases were recoverable with the application of sodium nitroprusside (SNP, a NO donor). Microscopic analysis of root collars revealed that treatment with Cd and cPTIO inhibited CR primordia initiation. In contrast, although SNP partially recovered Cd-caused inhibition of CR elongation, treatment with cPTIO had no effect on CR elongation. l-NMMA, a widely used nitric oxide synthase (NOS) inhibitor, decreased endogenous NO content and CR number significantly, while tungstate, a nitrate reductase (NR) inhibitor, had no effect on endogenous NO content and CR number. Moreover, enzyme activity assays indicated that treatment with SNP inhibited NOS activity significantly, but had no effect on NR activity. All these results support the conclusions that a critical endogenous NO concentration is indispensable for rice CR primordia initiation rather than elongation, NOS is the main source for endogenous NO generation, and Cd decreases CR number by inhibiting NOS activity and thus decreasing endogenous NO content in rice seedlings.
[41]
丁艳菲. 水稻镉胁迫应答相关microRNA的分离与功能研究[D]. 杭州:浙江大学, 2012.
[42]
彭廷, 文慧丽, 赵亚帆, 等. 盐、干旱胁迫下水稻相关miRNA的鉴定及表达分析[J]. 华北农学报, 2018,33(02):20-27.
[43]
贾蓓. 水稻miR319的耐冷功能分析与分子机制研究[D]. 哈尔滨:东北农业大学, 2012.
[44]
Liu Q, Zhang Y C, Wang C Y, et al. Expression analysis of phytohormone-regulated microRNAs in rice, implying their regulation roles in plant hormone signaling[J]. FEBS Letters, 2009(4):723-728.
Twenty-two conserved miRNAs were chosen to investigate the expression pattern in response to phytohormone treatments, in which the effects of five classic plant hormone stresses were surveyed in Oryza sativa. The results showed that 11 miRNAs were found to be dysregulated by one or more phytohormone treatments. The target genes of these miRNAs were validated in vivo and their expression profiling were revealed. We also analyzed the promoter regions of the 22 conserved miRNAs for phytohormone-responsive elements and the existence of the elements provided further evidences supporting our results. These findings enable us to further investigate the role of miRNAs in phytohormone signaling.
[45]
彭捷. 水稻(Oryza sativa)中Cd和Cu调节的miRNAs表达谱分析及miR602a基因克隆与转化[D]. 南京:南京农业大学, 2009.
[46]
丁艳菲, 朱诚. 水稻镉胁迫诱导microRNA的分离与功能鉴定[A].中国植物生理学会.中国植物生理学会第十次会员代表大会暨全国学术年会论文摘要汇编[C]. 中国植物生理学会, 2009: 2.
[47]
孔德艳. 水稻抗旱相关miRNAs的克隆及其功能的初步研究[D]. 武汉:华中农业大学, 2010.
[48]
Ding Y F, Zhu C. The role of microRNAs in copper and cadmium homeostasis[J]. Biochemical and Biophysical Research Communications, 2009(1):6-10.
We confirm that FSH stimulates osteoclast formation, function and survival to enhance bone resorption. It does so via the activation of a pertussis toxin-sensitive G(i)-coupled FSH receptor that we and others have identified on murine and human osteoclast precursors and mature osteoclasts. FSH additionally enhances the production of several osteoclastogenic cytokines, importantly TNFalpha, likely within the bone marrow microenvironment, to augment its pro-resorptive action. FSH levels in humans rise before estrogen falls, and this hormonal change coincides with the most rapid rates of bone loss. On the basis of accumulating evidence, we reaffirm that FSH contributes to the rapid peri-menopausal and early post-menopausal bone loss, which might thus be amenable to FSH blockade.

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