Wang Zhen, Wang Panpan, Cao Huiyan, Liu Meiqi, Kong Lingyang, Wang Honggang, Ren Weichao, Fu Qifeng, Ma Wei
Pharmacy of College, Heilongjiang University of Chinese Medicine, Harbin, China.
Research Office of Development and Utilization of Medicinal Plants, Heilongjiang Academy of Forestry, Yichun, China.
Front Plant Sci. 2024 May 28;15:1403220. doi: 10.3389/fpls.2024.1403220. eCollection 2024.
The Basic Leucine Zipper (bZIP) transcription factors (TFs) family is among of the largest and most diverse gene families found in plant species, and members of the bZIP TFs family perform important functions in plant developmental processes and stress response. To date, genes in have not been characterized. In this work, a number of 47 genes were identified from the genome of , divided into 11 subfamilies. The distribution of these genes on the chromosome and gene replication events were analyzed. The motif, gene structure, -elements, and collinearity relationships of the genes were simultaneously analyzed. In addition, gene expression pattern analysis identified ten candidate genes involved in the developmental process of different tissue parts of . Among them, Four genes (, , and ) responded to drought and salt stress, which may have potential biological roles in development under salt and drought stress. Four hub genes (, , and ) mined in correlation network analysis, suggesting that these genes may form a regulatory network with other transcription factors to participate in regulating the growth and development of . This study provides new insights regarding the understanding of the comprehensive characterization of the PgbZIP TFs for further exploration of the functions of growth and developmental regulation in and the mechanisms for coping with abiotic stress response.
碱性亮氨酸拉链(bZIP)转录因子(TFs)家族是植物物种中发现的最大且最多样化的基因家族之一,bZIP转录因子家族成员在植物发育过程和胁迫响应中发挥重要作用。迄今为止,[具体物种]中的基因尚未得到表征。在这项工作中,从[具体物种]的基因组中鉴定出47个[具体物种名称]bZIP(PgbZIP)基因,分为11个亚家族。分析了这些PgbZIP基因在染色体上的分布以及基因复制事件。同时分析了PgbZIP基因的基序、基因结构、顺式作用元件和共线性关系。此外,基因表达模式分析确定了10个参与[具体物种]不同组织部分发育过程的候选基因。其中,4个基因([基因名称1]、[基因名称2]、[基因名称3]和[基因名称4])对干旱和盐胁迫有响应,这可能在盐和干旱胁迫下[具体物种]的发育中具有潜在生物学作用。在相关网络分析中挖掘出4个枢纽基因([基因名称5]、[基因名称6]、[基因名称7]和[基因名称8]),表明这些PgbZIP基因可能与其他转录因子形成调控网络,参与调控[具体物种]的生长发育。本研究为深入了解PgbZIP转录因子的综合特征提供了新见解,有助于进一步探索[具体物种]生长发育调控功能及应对非生物胁迫响应的机制。