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喀斯特地区具有特殊的地质结构,生态环境脆弱性较高,辨识和量化人为、自然多重干扰是减少人类干扰影响及制定喀斯特景观管理政策的重要依据。基于漓江流域喀斯特发育地貌特征,旨在建立包括地貌、水文、气候、生物、社会5类因素以及15个具体干扰指标的喀斯特综合干扰指数,并通过空间相关分析探究地理因子对综合干扰解释力以及因子与指标间交互作用力的特征。结果显示:(1)漓江流域中游综合干扰指数高于上下游,自然地形地貌本底以及不同类型喀斯特景观分布的地带性是分异的主要原因;(2)干扰等级为显著干扰,综合干扰指数为0.336,空间上呈现出东部与北部低、西部与南部高的分布特征,具有明显的空间异质性;(3)地理环境和社会经济因素对综合干扰具有较强解释力,采石采矿、各类灾害、生产活动等多项干扰指标以及海拔高度具有较强空间关联关系。评估了漓江流域喀斯特综合干扰并分析其空间特征,研究结果对喀斯特生态环境保护及景观资源可持续发展政策制定具有重要参考价值。 相似文献
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A 55 K SNP array-based genetic map and its utilization in QTL mapping for productive tiller number in common wheat 总被引:2,自引:0,他引:2
Jiajun Liu Wei Luo Nana Qin Puyang Ding Han Zhang Congcong Yang Yang Mu Huaping Tang Yaxi Liu Wei Li Qiantao Jiang Guoyue Chen Yuming Wei Youliang Zheng Chunji Liu Xiujin Lan Jian Ma 《TAG. Theoretical and applied genetics. Theoretische und angewandte Genetik》2018,131(11):2439-2450
Key message
A high-density genetic map constructed with a wheat 55 K SNP array was highly consistent with the physical map of this species and it facilitated the identification of a novel major QTL for productive tiller number.Abstract
Productive tiller number (PTN) plays a key role in wheat grain yield. In this study, a recombinant inbred line population with 199 lines derived from a cross between ‘20828’ and ‘Chuannong16’ was used to construct a high-density genetic map using wheat 55 K single nucleotide polymorphism (SNP) array. The constructed genetic map contains 12,109 SNP markers spanning 3021.04 cM across the 21 wheat chromosomes. The orders of the genetic and physical positions of these markers are generally in agreement, and they also match well with those based on the 660 K SNP array from which the one used in this study was derived. The ratios of SNPs located in each of the wheat deletion bins were similar among the wheat 9 K, 55 K, 90 K, 660 K and 820 K SNP arrays. Based on the constructed maps, a novel major quantitative trait locus QPtn.sau-4B for PTN was detected across multi-environments in a 0.55 cM interval on 4B and it explained 17.23–45.46% of the phenotypic variance. Twenty common genes in the physical interval between the flanking markers were identified on chromosome 4B of ‘Chinese Spring’ and wild emmer. These results indicate that wheat 55 K SNP array could be an ideal tool in primary mapping of target genes and the identification of QPtn.sau-4B laid a foundation for the following fine mapping and cloning work.3.
Song Ruigao Wang Yu Zheng Qiantao Yao Jing Cao Chunwei Wang Yanfang Zhao Jianguo 《中国科学:生命科学英文版》2022,65(4):739-752
Science China Life Sciences - The precise and simultaneous acquisition of multiple beneficial alleles in the genome is in great demand for the development of elite pig breeders. Cytidine base... 相似文献
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A novel,major, and validated QTL for the effective tiller number located on chromosome arm 1BL in bread wheat 总被引:2,自引:0,他引:2
Liu Jiajun Tang Huaping Qu Xiangru Liu Hang Li Cong Tu Yang Li Shuiqing Habib Ahsan Mu Yang Dai Shoufeng Deng Mei Jiang Qiantao Liu Yaxi Chen Guoyue Wang Jirui Chen Guangdeng Li Wei Jiang Yunfeng Wei Yuming Lan Xiujin Zheng Youliang Ma Jian 《Plant molecular biology》2020,104(1-2):173-185
Plant Molecular Biology - A novel and major QTL for the effective tiller number was identified on chromosomal arm 1BL and validated in two genetic backgrounds The effective tiller number (ETN)... 相似文献
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Clint D. J. Tavares Scarlett B. Ferguson David H. Giles Qiantao Wang Rebecca M. Wellmann John P. O'Brien Mangalika Warthaka Jennifer S. Brodbelt Pengyu Ren Kevin N. Dalby 《The Journal of biological chemistry》2014,289(34):23901-23916
Calmodulin (CaM)-dependent eukaryotic elongation factor 2 kinase (eEF-2K) impedes protein synthesis through phosphorylation of eukaryotic elongation factor 2 (eEF-2). It is subject to complex regulation by multiple upstream signaling pathways, through poorly described mechanisms. Precise integration of these signals is critical for eEF-2K to appropriately regulate protein translation rates. Here, an allosteric mechanism comprising two sequential conformations is described for eEF-2K activation. First, Ca2+/CaM binds eEF-2K with high affinity (Kd(CaM)app = 24 ± 5 nm) to enhance its ability to autophosphorylate Thr-348 in the regulatory loop (R-loop) by > 104-fold (kauto = 2.6 ± 0.3 s−1). Subsequent binding of phospho-Thr-348 to a conserved basic pocket in the kinase domain potentially drives a conformational transition of the R-loop, which is essential for efficient substrate phosphorylation. Ca2+/CaM binding activates autophosphorylated eEF-2K by allosterically enhancing kcatapp for peptide substrate phosphorylation by 103-fold. Thr-348 autophosphorylation results in a 25-fold increase in the specificity constant (kcatapp/Km(Pep-S)app), with equal contributions from kcatapp and Km(Pep-S)app, suggesting that peptide substrate binding is partly impeded in the unphosphorylated enzyme. In cells, Thr-348 autophosphorylation appears to control the catalytic output of active eEF-2K, contributing more than 5-fold to its ability to promote eEF-2 phosphorylation. Fundamentally, eEF-2K activation appears to be analogous to an amplifier, where output volume may be controlled by either toggling the power switch (switching on the kinase) or altering the volume control (modulating stability of the active R-loop conformation). Because upstream signaling events have the potential to modulate either allosteric step, this mechanism allows for exquisite control of eEF-2K output. 相似文献
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Jian Ma Puyang Ding Peng Qin Ya-Xi Liu Quan Xie Guangdeng Chen Wei Li Qiantao Jiang Guoyue Chen Xiu-Jin Lan Yu-Ming Wei Chunji Liu You-Liang Zheng 《Plant Growth Regulation》2017,82(2):281-291
OsGW7 (also known as OsGL7) is homologous to the Arabidopsis thaliana gene that encodes LONGIFOLIA protein, which regulates cell elongation, and is involved in regulating grain length in rice. However, our knowledge on its ortholog in wheat, TaGW7, is limited. In this study, we identified and mapped TaGW7 in wheat, characterized its nucleotide and protein structures, predicted the cis-elements of its promoter, and analysed its expression patterns. The GW7 orthologs in barley (HvGW7), rice (OsGW7), and Brachypodium distachyon (BdGW7) were also identified for comparative analyses. TaGW7 mapped onto the short arms of group 2 chromosomes (2AS, 2BS, and 2DS). Multiple alignments indicated GW7 possesses five exons and four introns in all but two of the species analysed. An exon–intron junction composed of introns 3–4 and exons 4–5 was highly conserved. GW7 has a conserved domain (DUF 4378) and two neighbouring low complexity regions. GW7 was mainly expressed in wheat spikes and stems, in barley seedling crowns, and in rice anthers and embryo-sacs during early development. Drought and heat significantly increased and decreased GW7 expression in wheat, respectively. In barley, GW7 was significantly down-regulated in paleae and awns but up-regulated in seeds under drought treatment and down-regulated under Fusarium and stem rust inoculation. In rice, OsGW7 expression differed significantly under drought treatments. Collectively, these results provide insights into GW7 structure and expression in wheat, barley and rice. The GW7 sequence structure and expression data are the foundation for manipulating GW7 and uncovering its roles in plants. 相似文献
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Uncovering the dispersion history,adaptive evolution and selection of wheat in China 总被引:2,自引:0,他引:2 下载免费PDF全文
Mengping Cheng Jian Chen Tingting Zhu Rui Wang Yaxi Liu Pengfei Qi Guoyue Chen Qiantao Jiang Yuming Wei Ming‐Cheng Luo Eviatar Nevo Robin G. Allaby Dengcai Liu Jirui Wang Jan Dvorák Youliang Zheng 《Plant biotechnology journal》2018,16(1):280-291
Wheat was introduced to China approximately 4500 years ago, where it adapted over a span of time to various environments in agro‐ecological growing zones. We investigated 717 Chinese and 14 Iranian/Turkish geographically diverse, locally adapted wheat landraces with 27 933 DArTseq (for 717 landraces) and 312 831 Wheat660K (for a subset of 285 landraces) markers. This study highlights the adaptive evolutionary history of wheat cultivation in China. Environmental stresses and independent selection efforts have resulted in considerable genome‐wide divergence at the population level in Chinese wheat landraces. In total, 148 regions of the wheat genome show signs of selection in at least one geographic area. Our data show adaptive events across geographic areas, from the xeric northwest to the mesic south, along and among homoeologous chromosomes, with fewer variations in the D genome than in the A and B genomes. Multiple variations in interdependent functional genes such as regulatory and metabolic genes controlling germination and flowering time were characterized, showing clear allelic frequency changes corresponding to the dispersion of wheat in China. Population structure and selection data reveal that Chinese wheat spread from the northwestern Caspian Sea region to South China, adapting during its agricultural trajectory to increasingly mesic and warm climatic areas. 相似文献
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Junyan Feng Guoyue Chen Yuming Wei Yaxi Liu Qiantao Jiang Wei Li Zhien Pu Xiujin Lan Shoufen Dai Youliang Zheng 《Molecular breeding : new strategies in plant improvement》2014,33(3):601-609
Stripe rust (or yellow rust), caused by the fungus Puccinia striiformis f. sp. tritici (Pst), is one of the most important foliar diseases of wheat. Characterization and utilization of novel resistant genes is the most effective, economic and environmentally friendly approach to controlling the disease. Wheat line LM168-1, which was derived from a cross between common wheat Chuannong 16 and Milan, has good adult-plant resistance to stripe rust, based on field tests over several years. To elucidate the genetic basis of resistance, LM168-1 was crossed with susceptible variety SY95-71. Parents and F1, F2, BC1 and F2:3 progenies were tested in 2009–2011 in a field inoculated with the predominant races of Pst in China. The genetic analysis showed that resistance to stripe rust in LM168-1 was controlled by a single recessive gene, temporarily designated yrLM168. Simple sequence repeat (SSR), resistance gene analog polymorphism (RGAP) and target region amplification polymorphism (TRAP) techniques were used to identify molecular markers linked to the resistance locus. Finally, a linkage group consisting of two SSR, four RGAP and five TRAP markers was constructed for yrLM168 with 102 F2 plants. The closest markers R1 and R2 flanked the resistance gene locus at 2.4 and 2.4 cM, respectively. Furthermore, two SSR markers Xwmc59 and Xwmc145 assigned the gene to chromosome 6A. Because yrLM168 confers high-level resistance to the predominant races of Pst in China, it should be useful in stripe rust resistance breeding programs. The closely linked markers can be used for rapidly transferring yrLM168 to wheat breeding populations. 相似文献
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Yue Li Rongrong Zhang Yu Wu Qin Wu Qiantao Jiang Jian Ma Yazhou Zhang Pengfei Qi Guoyue Chen Yunfeng Jiang Youliang Zheng Yuming Wei Qiang Xu 《Molecular Plant Pathology》2023,24(10):1205-1219
The dynamic balance and distribution of sphingolipid metabolites modulate the level of programmed cell death and plant defence. However, current knowledge is still limited regarding the molecular mechanism underlying the relationship between sphingolipid metabolism and plant defence. In this study, we identified a wheat RNA-binding protein 1 (TaRBP1) and TaRBP1 mRNA accumulation significantly decreased in wheat after infection by Puccinia striiformis f. sp. tritici (Pst). Knockdown of TaRBP1 via virus-induced gene silencing conferred strong resistance to Pst by enhancing host plant reactive oxygen species (ROS) accumulation and cell death, indicating that TaRBP1 may act as a negative regulator in response to Pst. TaRBP1 formed a homopolymer and interacted with TaRBP1 C-terminus in plants. Additionally, TaRBP1 physically interacted with TaGLTP, a sphingosine transfer protein. Knockdown of TaGLTP enhanced wheat resistance to the virulent Pst CYR31. Sphingolipid metabolites showed a significant accumulation in TaGLTP-silenced wheat and TaRBP1-silenced wheat, respectively. In the presence of the TaRBP1 protein, TaGLTP failed to be degraded in a 26S proteasome-dependent manner in plants. Our results reveal a novel susceptible mechanism by which a plant fine-tunes its defence responses by stabilizing TaGLTP accumulation to suppress ROS and sphingolipid accumulation during Pst infection. 相似文献
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