Growth & Development

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    Rewiring the stomatal lineage: A novel developmental pathway to plant totipotency
    Kang Chong
    J Integr Plant Biol 2025, 67 (12): 3068-3070.  
    doi: 10.1111/jipb.70067
    Abstract (Browse 175)  |   Save
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    This commentary highlights a study revealing that stomatal lineage precursor cells can be reprogrammed into somatic embryos through a LEC2–SPCH–YUC auxin regulatory circuit. This study uncovers a developmental route to plant totipotency and offers promising strategies for improving regeneration efficiency in difficult-to-transform crop species.
      
    ZmTCP23 regulates leaf angle and tassel branch angle formation in maize by modulating LG1 expression and abscisic acid catabolism
    Panpan Yang, Kailin Zeng, Hu Hailing Wang, Xiaoting Zhuang, Juntao Wu, Zerong Chen, Zhuojun Zhong, Yongming Liu, Dexin Kong, Haiyang Wang, Yuting Liu
    J Integr Plant Biol 2025, 67 (10): 2744-2759.  
    DOI: 10.1111/jipb.70000
    Abstract (Browse 361)  |   Save
    Leaf angle (LA) and tassel branch angle (TBA) are two important agronomic traits influencing maize plant architecture, thereby affecting its adaptability to high-density planting. Liguleless1 (LG1) acts as a key regulator of LA and TBA, yet its precise regulatory mechanism remains largely obscure. In this study, we have identified ZmTCP23, a teosinte branched1/CYCLOIDEA/proliferating cell factors (TCP) transcription factor that is highly expressed in tassel and leaf primordia, serving as a pivotal upstream transcriptional regulator of LG1. The functional loss of ZmTCP23 results in a significant reduction in both TBA and LA ranges. Moreover, in vitro and in vivo studies revealed that LG1 directly represses the expression of ZmXERICO1, a gene encoding an inhibitor of abscisic acid (ABA) degradation that can also influence LA and TBA upon overexpression. Additionally, ZmTCP23 physically interacts with the previously identified TBA regulator BAD1, forming a complex that co-activates the expression of LG1 via direct binding to its promoter. This dynamic duo established a positive feedback loop, mutually enhancing each other's expression within the tassels, and consequently influencing TBA. Our findings establish a ZmTCP23-LG1-ZmXERICO1 transcriptional regulatory cascade that orchestrates LA and TBA through influencing ABA content, and provide new targets for the genetic manipulation of LA and TBA for molecular breeding of high-density tolerant maize cultivars.
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    A transcriptional regulatory cascade involving the maize transcription factor ZmTCP23, along with Liguleless1 and ZmXERICO1 orchestrates leaf angle and tassel branch angle by influencing abscisic acid contents, providing new targets for the genetic manipulation of plant architecture for molecular breeding of high-density-tolerant maize cultivars.
      
    OsSCR coordinates with OsSPL10 and OsWOX3B to promote epidermal hair development in rice
    Yanhuang An, Xiaoting Ma, Tengxiao Luo, Liang Chen, Jiahao Luo, Meifei Su, Suiwen Hou
    J Integr Plant Biol 2025, 67 (10): 2578-2593.  
    DOI: 10.1111/jipb.70005
    Abstract (Browse 317)  |   Save
    Epidermal hairs are specialized structures on the epidermis of plants that function in crop defense against biotic and abiotic stresses, particularly in warding off herbivores and pests. However, the regulatory mechanism governing epidermal hair formation in rice remains unclear. Here, we report that OsSCR1 (SCARECROW1) and OsSCR2 redundantly promote development of three types of rice trichomes (macro hairs, micro hairs, and glandular hairs), as shown through the reduced and increased trichomes in their knockout and overexpression lines. We demonstrate that OsSCR1 acts upstream of OsWOX3B (WUSCHEL-RELATED HOMEOBOX 3B) in that overexpression of OsWOX3B could rescue the macro hair development defects in osscr1 osscr2 double mutants, and that OsSCR1 protein activates OsWOX3B expression using luciferase activity and chromatin immunoprecipitation quantitative PCR (ChIP-qPCR) assays. In addition, OsSPL10 (SQUAMOSA PROMOTER BINDING PROTEIN-LIKE10) acts upstream of OsSCR1 and enhances its expression to promote the development of macro and micro hairs. Additionally, increasing leaf trichome density through overexpressing OsSCR2 could enhance seedling resistance to locust feeding. Collectively, our findings indicate that OsSPL10 facilitates the process of OsSCR1 inducing OsWOX3B activity to promote the formation of macro and micro hairs in rice.
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    During the initiation of epidermal hair development, SQUAMOSA PROMOTER BINDING PROTEIN-LIKE 10 upregulates the SCARECROW (SCR) gene OsSCR by directly binding to its promoter. Subsequently, OsSCR binds to the promoter of the WUSCHEL-RELATED HOMEOBOX gene OsWOX3B and activates its expression, thereby promoting epidermal hair formation.
      
    Orchestration of leaf curvature by the SBP transcription factor SPL10–REVOLUTA module in Arabidopsis
    Pengfei Xu, Qihui Wan, Wenna Shao, You Wu, Feijie Wu, Xiaorong Li, Wenqing Ren, Yuke He, Shuxia Li, Xiang Yu
    J Integr Plant Biol 2025, 67 (7): 1805-1822.  
    DOI: 10.1111/jipb.13893
    Abstract (Browse 394)  |   Save
    Leaf curvature significantly contributes to important economic traits in vegetable crops. The upward-curling leaf phenotype has been consistently observed upon overexpression of a miR156/157-resistant version of the SQUAMOSA PROMOTER BINDING PROTEIN-LIKE 10 (SPL10) transcription factor (rSPL10). However, the role of SPL10 in regulating leaf curvature has not been well characterized. In this study, using DNA affinity purification sequencing followed by transient transactivation assays, we found that SPL10 can bind to the promoter and gene body of REVOLUTA (REV), augmenting its expression. The rSPL10 rev-6 double mutant plant displayed a downward-curling leaf phenotype similar to the rev-6 plant, supporting the notion that REV functions downstream of SPL10. Importantly, the SPL10 protein physically interacts with the REV protein, which attenuates the expression of REV promoted by SPL10, leading to the downregulation of REV-regulated genes involved in leaf curvature, such as HB2 and HB4. These findings suggest that the SPL10–REV module acts as a molecular rheostat to prevent excessive amplification of REV transcripts in Arabidopsis. Furthermore, overexpression of the BrpREV1 gene in Chinese cabbage caused the transformation of rosette leaves from flat to upward-curving and accelerated heading. Taken together, our findings reveal the role of SPL10–REV module in orchestrating leaf curvature, which could potentially be utilized for molecular breeding of economical traits in vegetable crops.
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    The SQUAMOSA PROMOTER BINDING PROTEIN-LIKE10-REVOLUTA module acts as a negative feedback loop in plants to prevent REVOLUTA and its regulated genes from becoming too active, thus helping keep the leaves from curling too much and maintaining their proper shape.
      
    DBB2 regulates plant height and shade avoidance responses in maize
    Xiaofei Wang, Zihao Jiao, Yonghui Zhang, Qingbiao Shi, Qibin Wang, Fengli Zhou, Di Xu, Guodong Wang, Fanying Kong, Haisen Zhang, Pinghua Li, Haiyang Wang, Gang Li
    J Integr Plant Biol 2025, 67 (5): 1323-1338.  
    DOI: 10.1111/jipb.13859
    Abstract (Browse 517)  |   Save
    Increasing plant density has been recognized as an effective strategy for boosting maize yields over the past few decades. However, dense planting significantly reduces the internal light intensity and the red to far-red (R:FR) light ratio in the canopy, which subsequently triggers shade avoidance responses (SAR) that limit further yield enhancements, particularly under high-density conditions. In this study, we identified double B-box containing protein DBB2, a member of the ZmBBX family that is rapidly induced by shade, as a crucial regulator of plant height and SAR. Disruption of DBB2 resulted in shorter internodes, reduced plant height, decreased cell elongation, and diminished sensitivity to shade in maize, effects that can be largely alleviated by external treatment with gibberellins (GA). Furthermore, we discovered that DBB2 physically interacted with the transcription factor HY5, inhibiting its transcriptional activation of ZmGA2ox4, a gene encoding a GA2 oxidase that can deactivate GA. This interaction positively influences maize plant height through the GA pathway. Additionally, we found that the induction of ZmDBB2 by shade is mediated by the transcription factor PIF4. Interestingly, DBB2 then interacted with PIF4 to enhance the transcriptional activation of cell elongation-related genes, such as ZmEXPA1, thereby establishing a positive feedback loop promoting cell elongation under canopy shade conditions. Our findings highlight the critical role of BBX proteins in modulating plant height and SAR, presenting them as key genetic targets for developing maize varieties suited to high-density planting conditions. This study also provides new insights into the molecular mechanisms underlying SAR and offers potential strategies for the genetic improvement of maize plant architecture and grain yield.
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    Increasing maize planting density enhances yields but reduces light intensity and red:far-red ratio, triggering shade avoidance responses. Double B-box zinc finger protein 2 functions as a key regulator of plant height and shade avoidance responses in maize, with potential as a genetic target for improving maize varieties in high-density conditions.
      
    FaNAC047-FaNAC058 module coordinately promotes chlorophyll degradation and reactive oxygen species production during heat-induced leaf senescence in tall fescue
    Liwen Cao, Yao Chen, Kai Xiao, Liang Chen
    J Integr Plant Biol 2025, 67 (4): 1009-1027.  
    DOI: 10.1111/jipb.13897
    Abstract (Browse 435)  |   Save
    Leaf senescence can be triggered by various abiotic stresses. Among these, heat stress emerges as a pivotal environmental factor, particularly in light of the predicted rise in global temperatures. However, the molecular mechanism underlying heat-induced leaf senescence remains largely unexplored. As a cool-season grass species, tall fescue (Festuca arundinacea) is an ideal and imperative material for investigating heat-induced leaf senescence because heat stress easily triggers leaf senescence to influence its forage yield and turf quality. Here, we investigated the role of FaNAC047 in heat-induced leaf senescence. Overexpression of FaNAC047 promoted heat-induced leaf senescence in transgenic tall fescue that was evidenced by a more seriously destructive photosystem and higher accumulation of reactive oxygen species (ROS), whereas knockdown of FaNAC047 delayed leaf senescence. Further protein-DNA interaction assays indicated that FaNAC047 directly activated the transcriptions of NON-YELLOW COLORING 1 (FaNYC1), NYC1-like (FaNOL), and STAY-GREEN (FaSGR) but directly inhibited Catalases 2 (FaCAT2) expression, thereby promoting chlorophyll degradation and ROS accumulation. Subsequently, protein-protein interaction assays revealed that FaNAC047 physically interacted with FaNAC058 to enhance its regulatory effect on FaNYC1, FaNOL, FaSGR, and FaCAT2. Additionally, FaNAC047 could transcriptionally activate FaNAC058 expression to form a regulatory cascade, driving senescence progression. Consistently, the knockdown of FaNAC058 significantly delayed heat-induced leaf senescence. Collectively, our results reveal that FaNAC047-FaNAC058 module coordinately mediates chlorophyll degradation and ROS production to positively regulate heat-induced leaf senescence. The findings illustrate the molecular network of heat-induced leaf senescence for breeding heat-resistant plants.
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    The FaNAC047-FaNAC058 transcription factor complex mediates heat-accelerated leaf senescence in tall fescue (Festuca arundinacea) through coordinated regulation of chlorophyll catabolism and reactive oxygen species homeostasis. Additionally, FaNAC047 positively regulates FaNAC058, driving the progression of senescence.
      
    More than flowering: CONSTANS plays multifaceted roles in plant development and stress responses
    Bin Yu, Yilong Hu, Xingliang Hou
    J Integr Plant Biol 2025, 67 (3): 425-439.  
    doi: 10.1111/jipb.13798
    Abstract (Browse 591)  |   Save
    Plants have evolved a remarkable ability to sense and respond to changes in photoperiod, allowing adjustments to their growth and development based on seasonal and environmental cues. The floral transition is a pivotal stage in plant growth and development, signifying a shift from vegetative to reproductive growth. CONSTANS (CO), a central photoperiodic response factor conserved in various plants, mediates day-length signals to control the floral transition, although its mechanisms of action vary among plants with different day-length requirements. In addition, recent studies have uncovered roles for CO in organ development and stress responses. These pleiotropic roles in model plants and crops make CO a potentially fruitful target for molecular breeding aimed at modifying crop agronomic traits. This review systematically traces research on CO, from its discovery and functional studies to the exploration of its regulatory mechanisms and newly discovered functions, providing important insight into the roles of CO and laying a foundation for future research.
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    This review traces research on CONSTANS (CO), from its discovery and functional studies to the exploration of its mechanisms in regulating flowering time and the circadian clock, and newly discovered functions, providing insight into the roles of CO and laying a foundation for future research.
      
    WRKY transcription factors: Hubs for regulating plant growth and stress responses
    Lu Yang, Siyu Fang, Lei Liu, Lirong Zhao, Wanqin Chen, Xia Li, Zhiyu Xu, Shidie Chen, Houping Wang, Diqiu Yu
    J Integr Plant Biol 2025, 67 (3): 488-509.  
    doi: 10.1111/jipb.13828
    Abstract (Browse 868)  |   Save
    As sessile organisms, plants must directly face various stressors. Therefore, plants have evolved a powerful stress resistance system and can adjust their growth and development strategies appropriately in different stressful environments to adapt to complex and ever-changing conditions. Nevertheless, prioritizing defensive responses can hinder growth; this is a crucial factor for plant survival but is detrimental to crop production. As such, comprehending the impact of adverse environments on plant growth is not only a fundamental scientific inquiry but also imperative for the agricultural industry and for food security. The traditional view that plant growth is hindered during defense due to resource allocation trade-offs is challenged by evidence that plants exhibit both robust growth and defensive capabilities through human intervention. These findings suggest that the growth‒defense trade-off is not only dictated by resource limitations but also influenced by intricate transcriptional regulatory mechanisms. Hence, it is imperative to conduct thorough investigations on the central genes that govern plant resistance and growth in unfavorable environments. Recent studies have consistently highlighted the importance of WRKY transcription factors in orchestrating stress responses and plant-specific growth and development, underscoring the pivotal role of WRKYs in modulating plant growth under stressful conditions. Here, we review recent advances in understanding the dual roles of WRKYs in the regulation of plant stress resistance and growth across diverse stress environments. This information will be crucial for elucidating the intricate interplay between plant stress response and growth and may aid in identifying gene loci that could be utilized in future breeding programs to develop crops with enhanced stress resistance and productivity.
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    This review highlights the molecular regulatory mechanisms of WRKY transcription factors in balancing growth and defense responses to abiotic and biotic stresses. The dual roles of different WRKYs in growth and resistance are discussed, and the manipulation of WRKY functions is proposed to improve crop growth and stress tolerance.
      
    Multiple roles of NAC transcription factors in plant development and stress responses
    Haiyan Xiong, Haidong He, Yu Chang, Binbin Miao, Zhiwei Liu, Qianqian Wang, Faming Dong, Lizhong Xiong
    J Integr Plant Biol 2025, 67 (3): 510-538.  
    doi: 10.1111/jipb.13854
    Abstract (Browse 783)  |   Save
    NAC (NAM, ATAF1/2, and CUC2) transcription factors (TFs) are a family of plant-specific TFs that play crucial roles in various aspects of plant development and stress responses. Here, we provide an in-depth review of the structural characteristics, regulatory mechanisms, and functional roles of NACs in different plant species. One of the key features of NACs is their ability to regulate gene expression through a variety of mechanisms, including binding to DNA sequences in the promoter regions of target genes, interacting with other TFs, and modulating chromatin structure. We discuss these mechanisms in detail, providing insights into the complex regulatory networks that govern the activity of NACs. We explore the diverse functions of these TFs in plant growth and development processes, including embryogenesis, seed development, root and shoot development, floral development and fruit ripening, secondary cell wall formation, and senescence. We also discuss the diverse regulatory roles of NACs in response to various stresses, including drought, flooding, heat, cold, salinity, nutrient deficit, and diseases. Lastly, we emphasize the crosstalk role of NACs between developmental processes and stress responses. This integrated perspective highlights how NACs orchestrate plant growth and resilience. Overall, this review provides a comprehensive overview of the pivotal roles of NACs in plant development and stress responses, emphasizing their potential for engineering stress-resistant crops and enhancing agricultural productivity.
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    This review provides an in-depth review of the structural characteristics, regulatory mechanisms, and functional roles of NAC (NAM, ATAF1/2, and CUC2) transcription factors in different plant species.
      
    Diverse roles of MYB transcription factors in plants
    Dawei Zhang, Huapeng Zhou, Yang Zhang, Yuqing Zhao, Yiyi Zhang, Xixian Feng, Honghui Lin
    J Integr Plant Biol 2025, 67 (3): 539-562.  
    doi: 10.1111/jipb.13869
    Abstract (Browse 886)  |   Save
    MYB transcription factors (TFs), one of the largest TF families in plants, are involved in various plant-specific processes as the central regulators, such as in phenylpropanoid metabolism, cell cycle, formation of root hair and trichome, phytohormones responses, reproductive growth and abiotic or biotic stress responses. Here we summarized multiple roles and explained the molecular mechanisms of MYB TFs in plant development and stress adaptation. The exploration of MYB TFs contributes to a better comprehension of molecular regulation in plant development and environmental adaptability.
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    This review examines how MYB transcription factor family members function in: (1) the multi-level regulation of phenylpropanoid compounds, (2) the regulation of plant development from the cellular to the organ level, and (3) the regulation of plant responses and resistance to abiotic and biotic stresses.
      
    Vacuolar phosphate efflux transporter ZmVPEs mediate phosphate homeostasis and remobilization in maize leaves
    Zhenhui Guo, Chaonan Zhang, Hongyu Zhao, Yu Liu, Xiyao Chen, Hanshu Zhao, Limei Chen, Wenyuan Ruan, Yifang Chen, Lixing Yuan, Keke Yi, Lei Xu, Jingbo Zhang
    J Integr Plant Biol 2025, 67 (2): 311-326.  
    DOI: 10.1111/jipb.13811
    Abstract (Browse 308)  |   Save
    Phosphorus (P) is an essential macronutrient for plant growth and development. Vacuoles play a crucial role in inorganic phosphate (Pi) storage and remobilization in plants. However, the physiological function of vacuolar phosphate efflux transporters in plant Pi remobilization remains obscure. Here, we identified three ZmVPE genes (ZmVPE1, ZmVPE2a, ZmVPE2b) by combining them with transcriptome and quantitative real-time polymerase chain reaction (PCR) analyses, showing a relatively higher expression in older leaves than in younger leaves in maize. Moreover, the expression of the ZmVPEs was triggered by Pi deficiency and abscisic acid. ZmVPEs were localized to the vacuolar membrane and responsible for vacuolar Pi efflux. Compared with the wild-type, Pi remobilization from older to younger leaves was enhanced in ZmVPE-overexpression lines. zmvpe2a mutants displayed an increase in the total P and Pi concentrations in older leaves, but a decrease in younger leaves. In rice, Pi remobilization was impaired in the osvpe1osvpe2 double mutant and enhanced in OsVPE-overexpression plants, suggesting conserved functions of VPEs in modulating Pi homeostasis and remobilization in crop plants. Taken together, our findings revealed a novel mechanism underlying Pi remobilization from older to younger leaves mediated by plant vacuolar Pi efflux transporters, facilitating the development of Pi-efficient crop plants.
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    In maize, phosphorus remobilization from older to younger leaves is mediated by vacuolar phosphate efflux transporters, which are potential targets for developing crops with higher phosphate usage efficiency.
      
    The MYB61–STRONG2 module regulates culm diameter and lodging resistance in rice
    Yong Zhao, Xianpeng Wang, Jie Gao, Muhammad Abdul Rehman Rashid, Hui Wu, Qianfeng Hu, Xingming Sun, Jinjie Li, Hongliang Zhang, Peng Xu, Qian Qian, Chao Chen, Zichao Li, Zhanying Zhang
    J Integr Plant Biol 2025, 67 (2): 243-257.  
    DOI: 10.1111/jipb.13830
    Abstract (Browse 608)  |   Save
    Lodging reduces grain yield and quality in cereal crops. Lodging resistance is affected by the strength of the culm, which is influenced by the culm diameter, culm wall thickness, and cell wall composition. To explore the genetic architecture of culm diameter in rice (Oryza sativa), we conducted a genome-wide association study (GWAS). We identified STRONG CULM 2 (STRONG2), which encodes the mannan synthase CSLA5, and showed that plants that overexpressed this gene had increased culm diameter and improved lodging resistance. STRONG2 appears to increase the levels of cell wall components, such as mannose and cellulose, thereby enhancing sclerenchyma development in stems. SNP14931253 in the STRONG2 promoter contributes to variation in STRONG2 expression in natural germplasms and the transcription factor MYB61 directly activates STRONG2 expression. Furthermore, STRONG2 overexpressing plants produced significantly more grains per panicle and heavier grains than the wild-type plants. These results demonstrate that the MYB61–STRONG2 module positively regulates culm diameter and lodging resistance, information that could guide breeding efforts for improved yield in rice.
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    The transcription factor MYB61 positively regulates the expression of the mannan synthase gene STRONG2, thus affecting cell wall composition, promoting secondary cell wall formation, and enhancing lodging resistance. In addition, STRONG214931253T could be a valuable haplotype for genetic improvement of lodging tolerance in rice.
      
    Natural variations in MdNAC18 exert major genetic effect on apple fruit harvest date by regulating ethylene biosynthesis genes
    Guo Wen, Bei Wu, Yi Wang, Ting Wu, Zhenhai Han, Xinzhong Zhang
    J Integr Plant Biol 2024, 66 (11): 2450-2469.  
    DOI: 10.1111/jipb.13757
    Abstract (Browse 443)  |   Save
    Dissecting the genetic control of apple fruit harvest date (AFHD) into multiple Mendelian factors poses a significant challenge in modern genetics. Here, a quantitative trait locus (QTL) for AFHD was fine-mapped to the NAC transcription factor (TF) MdNAC18 within the interval defined by the overlap of QTLs Z03.5/Z03.6 and F03.2/F03.3. One direct target of MdNAC18 is the ethylene biosynthesis gene MdACO1. The single nucleotide polymorphisms (SNPs) SNP517 and SNP958 in the MdNAC18 coding sequence modulated activation of MdACO1 by MdNAC18. SNP1229 in the MdACO1 promoter destroyed the MdNAC18 binding site and thus abolished MdNAC18 binding. SNP517 and SNP958 also affected MdNAC18 activation of the TF gene MdARF5; MdARF5 activates the ethylene biosynthesis gene MdACS1. SNP517 and SNP958 in MdNAC18, SNP1229 and SNP769 (linked to InDel62) in MdACO1, and InDel162 in MdACS1 constituted a genetic variation network. The genetic effect of this network on AFHD was estimated as 60.3 d, accounting for 52.6% of the phenotype variation of the training population. The joint effects of these polymorphisms increased the accuracy of a genomics-assisted prediction (GAP) model for AFHD (r = 0.7125). Together, our results suggest that genetic variation in MdNAC18 affects AFHD by modulating ethylene biosynthesis and provide an optimized GAP model for apple breeding.
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    Natural variants in the transcription factor gene MdNAC18 affect apple fruit harvest date by modulating ethylene biosynthesis. Two single-nucleotide polymorphisms (SNPs) in MdNAC18, and SNPs and an insertion/deletion in two ethylene biosynthesis genes constitute a genetic variation network and provide an optimized genomics-assisted prediction model for apple breeding.
      
    The OsAGO2–OsNAC300OsNAP module regulates leaf senescence in rice
    Shaoyan Zheng, Junyu Chen, Ying He, Jingqin Lu, Hong Chen, Zipeng Liang, Junqi Zhang, Zhenlan Liu, Jing Li, Chuxiong Zhuang
    J Integr Plant Biol 2024, 66 (11): 2395-2411.  
    doi: 10.1111/jipb.13766
    Abstract (Browse 375)  |   Save
    Leaves play a crucial role in the growth and development of rice (Oryza sativa) as sites for the production of photosynthesis. Early leaf senescence leads to substantial drops in rice yields. Whether and how DNA methylation regulates gene expression and affects leaf senescence remains elusive. Here, we demonstrate that mutations in rice ARGONAUTE 2 (OsAGO2) lead to premature leaf senescence, with chloroplasts in Osago2 having lower chlorophyll content and an abnormal thylakoid structure compared with those from wild-type plants. We show that OsAGO2 associates with a 24-nt microRNA and binds to the promoter region of OsNAC300, which causes DNA methylation and suppressed expression of OsNAC300. Overexpressing OsNAC300 causes the similar premature leaf senescence as Osago2 mutants and knocking out OsNAC300 in the Osago2 mutant background suppresses the early senescence of Osago2 mutants. Based on yeast one-hybrid, dual-luciferase, and electrophoresis mobility shift assays, we propose that OsNAC300 directly regulates transcription of the key rice aging gene NAC-like, activated by APETALA3/PISTILLATA (OsNAP) to control leaf senescence. Our results unravel a previously unknown epigenetic regulatory mechanism underlying leaf senescence in which OsAGO2–OsNAC300–OsNAP acts as a key regulatory module of leaf senescence to maintain leaf function.
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    Rice ARGONAUTE 2 binds to the microRNA miR2863c to regulate the expression of the transcription factor gene OsNAC300 through DNA methylation, ensuring the correct initiation of leaf senescence. The transcription factor OsNAP initiates the normal onset of senescence, directly or indirectly regulating the expression of senescence-associated genes and chloroplast development.
      
    Mechanisms of vacuolar phosphate efflux supporting soybean root hair growth in response to phosphate deficiency
    Zhong Shan, Yanli Chu, Guangfang Sun, Rui Chen, Jun Yan, Qiwei He, Yingna Liu, Bin Wang, Mingda Luan, Wenzhi Lan
    J Integr Plant Biol 2024, 66 (9): 1983-1999.  
    DOI: 10.1111/jipb.13735
    Abstract (Browse 404)  |   Save
    Phosphorus is an essential macronutrient for plant growth and development. In response to phosphate (Pi) deficiency, plants rapidly produce a substitutive amount of root hairs; however, the mechanisms underlying Pi supply for root hair growth remain unclear. Here, we observed that soybean (Glycine max) plants maintain a consistent level of Pi within root hairs even under external Pi deficiency. We therefore investigated the role of vacuole-stored Pi, a major Pi reservoir in plant cells, in supporting root hair growth under Pi-deficient conditions. Our findings indicated that two vacuolar Pi efflux (VPE) transporters, GmVPE1 and GmVPE2, remobilize vacuolar stored Pi to sustain cytosolic Pi content in root hair cells. Genetic analysis showed that double mutants of GmVPE1 and GmVPE2 exhibited reduced root hair growth under low Pi conditions. Moreover, GmVPE1 and GmVPE2 were highly expressed in root hairs, with their expression levels significantly upregulated by low Pi treatment. Further analysis revealed that GmRSL2 (ROOT HAIR DEFECTIVE 6-like 2), a transcription factor involved in root hair morphogenesis, directly binds to the promoter regions of GmVPE1 and GmVPE2, and promotes their expressions under low Pi conditions. Additionally, mutants lacking both GmRSL2 and its homolog GmRSL3 exhibited impaired root hair growth under low Pi stress, which was rescued by overexpressing either GmVPE1 or GmVPE2. Taken together, our study has identified a module comprising vacuolar Pi exporters and transcription factors responsible for remobilizing vacuolar Pi to support root hair growth in response to Pi deficiency in soybean.
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    Under Pi deficiency, the soybean low-Pi responsive transcription factor ROOT HAIR DEFECTIVE 6-LIKE2 transcriptionally upregulates two vacuolar Pi efflux transporter genes, leading to the remobilization of Pi stored in the vacuole to enable root hair growth.
      
    MYB2 and MYB108 regulate lateral root development by interacting with LBD29 in Arabidopsis thaliana
    Feng Zhang, Junxia Wang, Tingting Ding, Xuefeng Lin, Haiying Hu, Zhaojun Ding and Huiyu Tian
    J Integr Plant Biol 2024, 66 (8): 1675-1687.  
    DOI: 10.1111/jipb.13720
    Abstract (Browse 469)  |   Save
    AUXIN RESPONSE FACTOR 7 (ARF7)‐mediated auxin signaling plays a key role in lateral root (LR) development by regulating downstream LATERAL ORGAN BOUNDARIES DOMAIN (LBD) transcription factor genes, including LBD16, LBD18, and LBD29. LBD proteins are believed to regulate the transcription of downstream genes as homodimers or heterodimers. However, whether LBD29 forms dimers with other proteins to regulate LR development remains unknown. Here, we determined that the Arabidopsis thaliana (L.) Heynh. MYB transcription factors MYB2 and MYB108 interact with LBD29 and regulate auxin‐induced LR development. Both MYB2 and MYB108 were induced by auxin in an ARF7‐dependent manner. Disruption of MYB2 by fusion with an SRDX domain severely affected auxin‐induced LR formation and the ability of LBD29 to induce LR development. By contrast, overexpression of MYB2 or MYB108 resulted in greater LR numbers, except in the lbd29 mutant background. These findings underscore the interdependence and importance of MYB2, MYB108, and LBD29 in regulating LR development. In addition, MYB2–LBD29 and MYB108–LBD29 complexes promoted the expression of CUTICLE DESTRUCTING FACTOR 1 (CDEF1), a member of the GDSL (Gly‐Asp‐Ser‐Leu) lipase/ esterase family involved in LR development. In summary, this study identified MYB2–LBD29 and MYB108–LBD29 regulatory modules that act downstream of ARF7 and intricately control auxin‐mediated LR development.
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    The MYB2– and MYB108–LATERAL ORGAN BOUNDARIES DOMAIN29 regulatory modules act downstream of AUXIN RESPOSE FACTOR7 and control auxin-mediated lateral root development in Arabidopsis.
      
    Functional divergences of natural variations of TaNAM-A1 in controlling leaf senescence during wheat grain filling
    Longxi Zhou, Guowei Chang, Chuncai Shen, Wan Teng, Xue He, Xueqiang Zhao, Yanfu Jing, Zhixiong Huang and Yiping Tong
    J Integr Plant Biol 2024, 66 (6): 1242-1260.  
    DOI: 10.1111/jipb.13658
    Abstract (Browse 513)  |   Save
    Leaf senescence is an essential physiological process related to grain yield potential and nutritional quality. Green leaf duration (GLD) after anthesis directly reflects the leaf senescence process and exhibits large genotypic differences in common wheat; however, the underlying gene regulatory mechanism is still lacking. Here, we identified TaNAM-A1 as the causal gene of the major loci qGLD-6A for GLD during grain filling by map-based cloning. Transgenic assays and TILLING mutant analyses demonstrated that TaNAM-A1 played a critical role in regulating leaf senescence, and also affected spike length and grain size. Furthermore, the functional divergences among the three haplotypes of TaNAM-A1 were systematically evaluated. Wheat varieties with TaNAM-A1d (containing two mutations in the coding DNA sequence of TaNAM-A1) exhibited a longer GLD and superior yield-related traits compared to those with the wild type TaNAM-A1a. All three haplotypes were functional in activating the expression of genes involved in macromolecule degradation and mineral nutrient remobilization, with TaNAM-A1a showing the strongest activity and TaNAM-A1d the weakest. TaNAM-A1 also modulated the expression of the senescence-related transcription factors TaNAC-S-7A and TaNAC016-3A. TaNAC016-3A enhanced the transcriptional activation ability of TaNAM-A1a by protein-protein interaction, thereby promoting the senescence process. Our study offers new insights into the fine-tuning of the leaf functional period and grain yield formation for wheat breeding under various geographical climatic conditions.
    References   |   Full Text HTML   |   Full Text PDF   |   Cited By
    TaNAM-A1 plays a major role in controlling leaf senescence during wheat grain filling by regulating macromolecular degradation and mineral nutrient remobilization. Allelic variants at the TaNAM-A1 locus produce TaNAM-A1 variants with different transcriptional regulatory activities and thus differentially modulate green leaf duration after anthesis and yield-related traits.
      
    Integrative regulatory mechanisms of stomatal movements under changing climate
    Jingbo Zhang, Xuexue Chen, Yajing Song and Zhizhong Gong
    J Integr Plant Biol 2024, 66 (3): 368-393.  
    doi: 10.1111/jipb.13611
    Abstract (Browse 496)  |   Save
    Global climate change-caused drought stress, high temperatures and other extreme weather profoundly impact plant growth and development, restricting sustainable crop production. To cope with various environmental stimuli, plants can optimize the opening and closing of stomata to balance CO2 uptake for photosynthesis and water loss from leaves. Guard cells perceive and integrate various signals to adjust stomatal pores through turgor pressure regulation. Molecular mechanisms and signaling networks underlying the stomatal movements in response to environmental stresses have been extensively studied and elucidated. This review focuses on the molecular mechanisms of stomatal movements mediated by abscisic acid, light, CO2, reactive oxygen species, pathogens, temperature, and other phytohormones. We discussed the significance of elucidating the integrative mechanisms that regulate stomatal movements in helping design smart crops with enhanced water use efficiency and resilience in a climate-changing world.
    References   |   Full Text HTML   |   Full Text PDF   |   Cited By
    This review summarizes current knowledge on the molecular mechanisms of stomatal movements mediated by abscisic acid, light, CO2, reactive oxygen species, pathogens, temperature, and other phytohormones, which helps in designing smart crops with higher resilience.
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