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How to make big data accessible to plant biologists and beyond: Ten years of lessons from TBtools

生物 大数据 数据科学 万维网 计算生物学 计算机科学 梅德林 工程伦理学 生物信息学 生态学
作者
Junting Feng,Chengjie Chen,Ya Wu,樊龙江,Zhang Zhang,Ming Chen,Haibao Tang,Guangchuang Yu,Jian Ren,Jingchu Luo,Yi Liao,Aiping Luan,Zihao Wang,Shuyuan Tang,Yang Shao,Yanyang Liang,Jiabao Wang,Jianghui Xie,Rui Xia
出处
期刊:Molecular Plant [Elsevier BV]
标识
DOI:10.1016/j.molp.2026.05.015
摘要

Over the past two decades, omics and big data have shifted plant molecular biology from single-gene, hypothesis driven studies to systems level, data driven discovery. As datasets expand in scale and diversity, bioinformatics software has become essential for routine analysis and interpretation. However, the efficiency of data exploration and evidence integration has not kept pace with data growth, leaving many datasets underutilized and only slowly translated into biological insight. A central bottleneck is the widening gap between the limited data analysis skills of many experimental biologists and the increasing complexity of biological data. TBtools was developed to narrow this gap by providing low-barrier, interactive functions for common plant omics tasks, and it has been broadly adopted. Here, we use it as a decade-long case study to determine why certain local tools achieve broad adoption in plant omics, distill eight actionable design recommendations, and propose four capacity pillars for next-generation local workbenches: project-level data management, reproducible workflow construction, elastic remote computing, and AI-assisted navigation and automation. Together, these lessons provide a practical roadmap for accelerating the translation of omics data into biological insight.
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