Insights into lncRNA-mediated regulatory networks in Hevea brasiliensis under anthracnose stress.

IF 4.7 2区 生物学 Q1 BIOCHEMICAL RESEARCH METHODS Plant Methods Pub Date : 2024-12-05 DOI:10.1186/s13007-024-01301-4
Yanluo Zeng, Tianbin Guo, Liping Feng, Zhuoda Yin, Hongli Luo, Hongyan Yin
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Abstract

In recent years, long non-coding RNAs (lncRNAs) and microRNAs (miRNAs) have emerged as critical regulators in plant biology, governing complex gene regulatory networks. In the context of disease resistance in Hevea brasiliensis, the rubber tree, significant progress has been made in understanding its response to anthracnose disease, a serious threat posed by fungal pathogens impacting global rubber tree cultivation and latex quality. While advances have been achieved in unraveling the genetic and molecular foundations underlying anthracnose resistance, gaps persist in comprehending the regulatory roles of lncRNAs and miRNAs under such stress conditions. The specific contributions of these non-coding RNAs in orchestrating molecular responses against anthracnose in H. brasiliensis remain unclear, necessitating further exploration to uncover strategies that increase disease resistance. Here, we integrate lncRNA sequencing, miRNA sequencing, and degradome sequencing to decipher the regulatory landscape of lncRNAs and miRNAs in H. brasiliensis under anthracnose stress. We investigated the genomic and regulatory profiles of differentially expressed lncRNAs (DE-lncRNAs) and constructed a competitive endogenous RNA (ceRNA) regulatory network in response to pathogenic infection. Additionally, we elucidated the functional roles of HblncRNA29219 and its antisense hbr-miR482a, as well as the miR390-TAS3-ARF pathway, in enhancing anthracnose resistance. These findings provide valuable insights into plant-microbe interactions and hold promising implications for advancing agricultural crop protection strategies. This comprehensive analysis sheds light on non-coding RNA-mediated regulatory mechanisms in H. brasiliensis under pathogen stress, establishing a foundation for innovative approaches aimed at enhancing crop resilience and sustainability in agriculture.

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炭疽病胁迫下巴西橡胶树lncrna介导的调控网络研究
近年来,长链非编码rna (lncRNAs)和microRNAs (miRNAs)已成为植物生物学中重要的调控因子,控制着复杂的基因调控网络。在橡胶树巴西橡胶树(Hevea brasiliensis)抗病方面,人们对其对炭疽病(一种真菌病原体对全球橡胶树种植和乳胶质量造成的严重威胁)的反应的了解取得了重大进展。虽然在揭示炭疽病抗性的遗传和分子基础方面取得了进展,但在理解lncrna和mirna在这种胁迫条件下的调节作用方面仍然存在空白。这些非编码rna在协调巴西猿猴抗炭疽病分子反应中的具体作用尚不清楚,需要进一步探索以发现增加疾病抗性的策略。在此,我们整合了lncRNA测序、miRNA测序和降解组测序,以破译炭疽病胁迫下巴西血吸虫lncRNA和miRNA的调控格局。我们研究了差异表达lncRNAs (DE-lncRNAs)的基因组和调控谱,并构建了一个竞争性内源性RNA (ceRNA)调控网络,以应对致病性感染。此外,我们还阐明了HblncRNA29219及其反义hbr-miR482a以及miR390-TAS3-ARF通路在增强炭疽病抗性中的功能作用。这些发现为植物与微生物的相互作用提供了有价值的见解,并对推进农业作物保护战略具有重要意义。这一综合分析揭示了病原菌胁迫下巴西芽孢杆菌非编码rna介导的调控机制,为旨在提高作物抗逆性和可持续性的创新方法奠定了基础。
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来源期刊
Plant Methods
Plant Methods 生物-植物科学
CiteScore
9.20
自引率
3.90%
发文量
121
审稿时长
2 months
期刊介绍: Plant Methods is an open access, peer-reviewed, online journal for the plant research community that encompasses all aspects of technological innovation in the plant sciences. There is no doubt that we have entered an exciting new era in plant biology. The completion of the Arabidopsis genome sequence, and the rapid progress being made in other plant genomics projects are providing unparalleled opportunities for progress in all areas of plant science. Nevertheless, enormous challenges lie ahead if we are to understand the function of every gene in the genome, and how the individual parts work together to make the whole organism. Achieving these goals will require an unprecedented collaborative effort, combining high-throughput, system-wide technologies with more focused approaches that integrate traditional disciplines such as cell biology, biochemistry and molecular genetics. Technological innovation is probably the most important catalyst for progress in any scientific discipline. Plant Methods’ goal is to stimulate the development and adoption of new and improved techniques and research tools and, where appropriate, to promote consistency of methodologies for better integration of data from different laboratories.
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