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Light signaling
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Assembly mechanism of PSII-LHCII array from higher plants
Jianghao Wu, Cang Wu, Shuaijiabin Chen, Chao Huang, Quan Wen, Weijun Lin, Chao Wang, Dexian Han, Dandan Lu, Xiumei Xu, Jun Gao, Sen-Fang Sui, Lixin Zhang
J Integr Plant Biol 2025, 67 (12): 3152-3166.
DOI:
10.1111/jipb.70045
Abstract
(Browse
258
) |
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Photosystem II (PSII) comprises reaction centers and light-harvesting complexes of the major and minor antennas, forming diverse supercomplexes with varying antenna sizes and are organized as PSII arrays in grana thylakoids to respond to fluctuating light. However, the assembly mechanism of PSII arrays, excitation energy transfer and its regulation mechanisms in vascular plants remain poorly understood. Here, we report the cryo-electron microscopy structures of a 1.4-MDa PSII-LHCII (light-harvesting complex II) dimer and a 2.8-MDa tetramer, and present an initial model of hexamer from Arabidopsis. Structural and genetic analyses reveals that the tetramer is formed by two C2S2M2 dimers arranged side by side through interactions between CP26/PsbZ and moderate (M)-LHCII within PSII arrays in the grana thylakoid. Furthermore, conformational changes of M-LHCII and CP24 facilitate the assembly transition from dimer to tetramer/hexamer. Chlorophyll rearrangement, supported by computational calculations and spectral analysis, suggests enhanced energy transfer efficiency in the tetramer compared to the dimer. Therefore, our findings provide new insights into the dynamic assembly and excitation energy redistribution within PSII arrays in higher plants.
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Plants efficiently harvest light by forming large, flexible arrays of key protein complexes in Photosystem II and the Light-harvesting Complex II. These structures enhance energy capture and protect against light damage, revealing a dynamic organizational principle crucial for plant photosynthesis and health.
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Architecture of photosystem I–light-harvesting complex from the eukaryotic filamentous yellow-green alga
Tribonema minus
Ruiqi Shao, Yuqi Zou, Hui Shang, Yue Qiu, Zuxing Liang, Xiaodong Su, Shumeng Zhang, Mei Li, Xiaowei Pan
J Integr Plant Biol 2025, 67 (11): 3014-3031.
DOI:
10.1111/jipb.70010
Abstract
(Browse
228
) |
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Eukaryotic photosystem I (PSI) is a multi-subunit pigment–protein supercomplex that consists of a core complex and multiple peripheral light-harvesting complexes I (LHCIs), which increases the light absorption capacity of the core complex. Throughout the evolution of oxygenic photoautotrophs, the core subunits of PSI have remained highly conserved, while LHCIs exhibit significant variability, presumably to adapt to diverse environments. This study presents a 2.82 Å resolution structure of PSI from the filamentous yellow-green alga
Tribonema minus
(Tm), a member of the class Xanthophyceae that evolved from red algae through endosymbiosis and is considered a promising candidate for biofuel production due to its high biomass and lipid content. Our structure reveals a supramolecular organization consisting of 12 core subunits and 13 LHCIs, here referred to as Xanthophyceae light-harvesting complexes (XLHs), along with the arrangement of pigments within the TmPSI–XLH supercomplex. A structural comparison between TmPSI-XLH and PSI–LHCI from various red lineages highlights distinctive features of TmPSI–XLH, suggesting that it represents a unique intermediate state in the PSI assembly process during the evolutionary transition from red algae to diatoms. Our findings advance the understanding of the molecular mechanisms responsible for energy transfer in Xanthophyceae PSI–XLH and the evolutionary adaptation of red lineages.
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The 2.82 Å cryo-EM structure of
Tribonema minus
photosystem I reveals a unique assembly comprising 12 core subunits encircled by 13 light-harvesting antennae, demonstrating conserved and divergent features compared to other red-lineage algae and highlighting its status as an evolutionary intermediate between red algae and diatoms.
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BBX32 dampens E3 ligase activity to promote greening in emerging seedlings
Kangwei Wang, Yun Meng, Qian Tian, Rong Zhou, Shi-an Wu, Jiashuai Wu, Shameen Sajid, Ying He, Junjie Ling, Haiyang Jiang, Qingqing Wu
J Integr Plant Biol 2025, 67 (8): 2078-2099.
DOI:
10.1111/jipb.13939
Abstract
(Browse
346
) |
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Germinating seeds undergo elaborate de-etiolation developmental transitions upon initial soil emergence. As central transcription factors promoting cotyledon greening, the abundance of ETHYLENE-INSENSITIVE 3 (EIN3) and PHYTOCHROME-INTERACTING FACTOR 3 (PIF3) are strictly controlled by physically associating themselves with the EIN3-BINDING F BOX PROTEINS 1 and 2 (EBF1/2) for ubiquitination. Here, we report that the B-box zinc-finger protein BBX32, as a positive regulator during seedling de-etiolation. BBX32 is robustly elevated during the dark-to-light transitions. Constitutively expressing
BBX32
ultimately protects against severe photobleaching damage by synchronizing the accumulation of protochlorophyllide (Pchlide) and the differentiation of etioplast–chloroplast apparatus in buried seedlings. Specifically, BBX32 directly interacts with EIN3, PIF3 and EBF1/2. These associations disrupt the assembly of the SCF
EBF1/2
-EIN3/PIF3 E3 ligation protein complexes, thus dampening E3 ligase activity and robustly controlling EIN3/PIF3 stability. Under soil conditions,
BBX32-ox
largely rescues the greening deficiency of
EBF1ox
, and all
EIN3ox/bbx32
seedlings override the
bbx32
mutant defect and successfully turn green. Both biochemical findings and genetic evidence reveal a novel regulatory paradigm by which the B-box protein dampens the E3 ligase binding activity to achieve green seedlings upon changes in light or soil environmental conditions.
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As seedlings emerge from the soil, levels of the B-box zinc finger protein BBX32 increase. BBX binds three key greening-related transcription factors, blocking their degradation and thus promoting greening in emerging seedlings.
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Switch on and off: Phospho-events in light signaling pathways
Nan Zhang, Hongtao Liu
J Integr Plant Biol 2025, 67 (7): 1756-1770.
DOI:
10.1111/jipb.13913
Abstract
(Browse
319
) |
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Light is a fundamental environmental cue that dynamically orchestrates plant growth and development through spatiotemporally regulated molecular networks. Among these, phosphorylation, a key post-translational modification, plays a crucial role in controlling the function, stability, subcellular localization, and protein–protein interactions of light signaling components. This review systematically examines phosphorylation-dependent regulatory events within the Arabidopsis light signaling cascade, focusing on its regulatory mechanisms, downstream functional consequences, and crosstalk with other signaling pathways. We underscore the pivotal role of phosphorylation in light signaling transduction, elucidating how the phosphorylation-decoding framework transduces light information into growth and developmental plasticity to modulate plant–environment interactions.
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This review discusses how phosphorylation functions as a molecular switch to dynamically control light signaling, thus helping plants adjust their growth and development in response to light, improving their ability to thrive in changing environments.
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The LUX-SWI3C module regulates photoperiod sensitivity in
Arabidopsis thaliana
Jianhao Wang, Huan Liu, Hong Li, Fan Wang, Songguang Yang, Lin Yue, Shuangrong Liu, Baohui Liu, Mingkun Huang, Fanjiang Kong, Zhihui Sun
J Integr Plant Biol 2025, 67 (6): 1551-1567.
DOI:
10.1111/jipb.13889
Abstract
(Browse
453
) |
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In plants, the photoperiod sensitivity directly influences flowering time, which in turn affects latitudinal adaptation and yield. However, research into the mechanisms underlying photoperiod sensitivity, particularly those mediated by epigenetic regulation, is still in its nascent stages. In this study, we analyzed the regulation of photoperiod sensitivity in
Arabidopsis thaliana
. We demonstrate that the evening complex LUX ARRYTHMO (LUX) and the chromatin remodeling factor SWITCH/SUCROSE NONFERMENTING 3C (SWI3C) regulate
GI
locus chromatin compaction and H3K4me3 modification levels at the
GIGANTEA
locus under different photoperiod conditions. This mechanism is one of the key factors that allow plants to distinguish between long-day and short-day photoperiods. Our study provides insight into how the LUX-SWI3C module regulates photoperiod sensitivity at the epigenetic level.
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Analysis of the regulation of photoperiod sensitivity in the long-day plant
Arabidopsis thaliana
demonstrates that the LUX ARRYTHMO-SWITCH/SUCROSE NONFERMENTING 3C module regulates the epigenetic landscape of the
GIGANTEA
locus under different photoperiod conditions. This mechanism plays a key role in enabling plants to distinguish between long-day and short-day photoperiods.
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Advances in photosynthesis research: Unlocking the potential for food security, renewable energy, and environmental sustainability
Wenqiang Yang, Rongcheng Lin
J Integr Plant Biol 2025, 67 (4): 879-881.
doi:
10.1111/jipb.13908
Abstract
(Browse
285
) |
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Structures of PSI-FCPI from
Thalassiosira pseudonana
grown under high light provide evidence for convergent evolution and light-adaptive strategies in diatom FCPIs
Yue Feng, Zhenhua Li, Yang Yang, Lili Shen, Xiaoyi Li, Xueyang Liu, Xiaofei Zhang, Jinyang Zhang, Fei Ren, Yuan Wang, Cheng Liu, Guangye Han, Xuchu Wang, Tingyun Kuang, Jian-Ren Shen, Wenda Wang
J Integr Plant Biol 2025, 67 (4): 949-966.
DOI:
10.1111/jipb.13816
Abstract
(Browse
404
) |
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Diatoms rely on fucoxanthin chlorophyll
a/c
-binding proteins (FCPs) for light harvesting and energy quenching under marine environments. Here we report two cryo-electron microscopic structures of photosystem I (PSI) with either 13 or five fucoxanthin chlorophyll
a/c
-binding protein Is (FCPIs) at 2.78 and 3.20 Å resolutions from
Thalassiosira pseudonana
grown under high light (HL) conditions. Among them, five FCPIs are stably associated with the PSI core, these include Lhcr3, RedCAP, Lhcq8, Lhcf10, and FCP3. The eight additional Lhcr-type FCPIs are loosely associated with the PSI core and detached under the present purification conditions. The pigments of this centric diatom showed a higher proportion of chlorophylls
a
, diadinoxanthins, and diatoxanthins; some of the chlorophyll
a
s and diadinoxanthins occupy the locations of fucoxanthins found in the huge PSI-FCPI from another centric diatom
Chaetoceros gracilis
grown under low-light conditions. These additional chlorophyll
a
s may form more energy transfer pathways and additional diadinoxanthins may form more energy dissipation sites relying on the diadinoxanthin-diatoxanthin cycle. These results reveal the assembly mechanism of FCPIs and corresponding light-adaptive strategies of
T. pseudonana
PSI-FCPI, as well as the convergent evolution of the diatom PSI-FCPI structures.
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Photosystem I underwent convergent evolution in different diatoms, with the diatom photosystem I-fucoxanthin chlorophyll a/c-binding protein I supercomplex adjusting the number of antennae to adapt to different light environments by balancing energy harvesting and energy dissipation.
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Cryo-EM structure of a minimal reaction center-light-harvesting complex from the phototrophic bacterium
Chloroflexus aurantiacus
Guoqiang Huang, Shishang Dong, Lin Ma, Lin Li, Jinxin Ju, Mei-Jiao Wang, Jian-Ping Zhang, Sen-Fang Sui, Xiaochun Qin
J Integr Plant Biol 2025, 67 (4): 967-978.
DOI:
10.1111/jipb.13853
Abstract
(Browse
360
) |
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Photosynthetic organisms have developed various light-harvesting antenna systems to capture light and transfer energy to reaction centers (RCs). Simultaneous utilization of the integral membrane light-harvesting antenna (LH complex) and the extrinsic antenna (chlorosomes) makes the phototrophic bacterium
Chloroflexus
(
Cfx
.)
aurantiacus
an ideal model for studying filamentous anoxygenic phototrophs (FAPs). Here, we determined the structure of a minimal RC-LH photocomplex from
Cfx. aurantiacus
J-10-fl (CaRC-LH) at 3.05-Å resolution. The CaRC-LH binds only to seven LH subunits, which form a crescent-shaped antenna surrounding the movable menaquinone-10 (Q
B
) binding site of CaRC. In this complex with minimal LH units, an extra antenna is required to ensure sufficient light-gathering, providing a clear explanation for the presence of chlorosomes in
Cfx. aurantiacus
. More importantly, the semicircle of the antenna represents a novel RC-LH assembly pattern. Our structure provides a basis for understanding the existence of chlorosomes in
Cfx. aurantiacus
and the possible assembly pattern of RC-LH.
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Determining the 3.05 Å resolution structure of a minimal reaction center–light harvesting antenna complex from Chloroflexus aurantiacus reveals a unique assembly pattern in which its 7 light harvesting antenna subunits form a crescent-shaped antenna around the QB site of the reaction center.
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Light signaling-dependent regulation of plastid RNA processing in Arabidopsis
Lili Hu, Qian Wu, Chunyu Wu, Chunmei Zhang, Ziying Wu, Meihui Shi, Man Zhang, Sujuan Duan, Hong‐Bin Wang, Hong‐Lei Jin
J Integr Plant Biol 2025, 67 (2): 375-390.
DOI:
10.1111/jipb.13779
Abstract
(Browse
390
) |
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Light is a vital environmental signal that regulates the expression of plastid genes. Plastids are crucial organelles that respond to light, but the effects of light on plastid RNA processing following transcription remain unclear. In this study, we systematically examined the influence of light exposure on plastid RNA processing, focusing on RNA splicing and RNA editing. We demonstrated that light promotes the splicing of transcripts from the plastid genes
rps12
,
ndhA
,
atpF
,
petB
, and
rpl2
. Additionally, light increased the editing rate of the
accD
transcript at nucleotide 794 (
accD
-794) and the
ndhF
transcript at nucleotide 290 (
ndhF
-290), while decreasing the editing rate of the
clpP
transcript at nucleotide 559 (
clpP
-559). We have identified key regulators of signaling pathways, such as CONSTITUTIVELY PHOTOMORPHOGENIC 1 (COP1), ELONGATED HYPOCOTYL 5 (HY5), and PHYTOCHROME-INTERACTING FACTORs (PIFs), as important players in the regulation of plastid RNA splicing and editing. Notably, COP1 was required for GENOMES UNCOUPLED1 (GUN1)-dependent repression of
clpP
-559 editing in the light. We showed that HY5 and PIF1 bind to the promoters of nuclear genes encoding plastid-localized RNA processing factors in a light-dependent manner. This study provides insight into the mechanisms underlying light-mediated post-transcriptional regulation of plastid gene expression.
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Light signals are perceived by photoreceptors and transduced to downstream effectors that regulate the expression of genes encoding key factors involved in plastid RNA processing, including RNA editing and splicing, to promote chloroplast biogenesis.
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Regulation of cryptochrome-mediated blue light signaling by the ABI4–PIF4 module
Pengyu Song, Zidan Yang, Huaichang Wang, Fangfang Wan, Dingming Kang, Wenming Zheng, Zhizhong Gong, Jigang Li
J Integr Plant Biol 2024, 66 (11): 2412-2430.
DOI:
10.1111/jipb.13769
Abstract
(Browse
515
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ABSCISIC ACID-INSENSITIVE 4 (ABI4) is a pivotal transcription factor which coordinates multiple aspects of plant growth and development as well as plant responses to environmental stresses. ABI4 has been shown to be involved in regulating seedling photomorphogenesis; however, the underlying mechanism remains elusive. Here, we show that the role of ABI4 in regulating photomorphogenesis is generally regulated by sucrose, but ABI4 promotes hypocotyl elongation of Arabidopsis seedlings under blue (B) light under all tested sucrose concentrations. We further show that ABI4 physically interacts with PHYTOCHROME INTERACTING FACTOR 4 (PIF4), a well-characterized growth-promoting transcription factor, and post-translationally promotes PIF4 protein accumulation under B light. Further analyses indicate that ABI4 directly interacts with the B light photoreceptors cryptochromes (CRYs) and inhibits the interactions between CRYs and PIF4, thus relieving CRY-mediated repression of PIF4 protein accumulation. In addition, while ABI4 could directly activate its own expression, CRYs enhance, whereas PIF4 inhibits, ABI4-mediated activation of the
ABI4
promoter. Together, our study demonstrates that the ABI4–PIF4 module plays an important role in mediating CRY-induced B light signaling in Arabidopsis.
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The AP2/ERF-family transcription factor ABSCISIC ACID-INSENSITIVE 4 interacts with the growth-promoting transcription factor PHYTOCHROME INTERACTING FACTOR 4 (PIF4) and the blue light photoreceptors cryptochromes, and post-translationally promotes PIF4 protein accumulation under blue light, thus playing an important role in mediating blue light signaling in
Arabidopsis
.
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Light-stabilized GIL1 suppresses PIN3 activity to inhibit hypocotyl gravitropism
Xiaolian Wang, Yanfang Yuan, Laurence Charrier, Zhaoguo Deng, Markus Geisler, Xing Wang Deng, Haodong Chen
J Integr Plant Biol 2024, 66 (9): 1886-1897.
doi:
10.1111/jipb.13736
Abstract
(Browse
327
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Light and gravity coordinately regulate the directional growth of plants. Arabidopsis Gravitropic in the Light 1 (GIL1) inhibits the negative gravitropism of hypocotyls in red and far-red light, but the underlying molecular mechanisms remain elusive. Our study found that GIL1 is a plasma membrane-localized protein. In endodermal cells of the upper part of hypocotyls, GIL1 controls the negative gravitropism of hypocotyls. GIL1 directly interacts with PIN3 and inhibits the auxin transport activity of PIN3. Mutation of
PIN3
suppresses the abnormal gravitropic response of
gil1
mutant. The GIL1 protein is unstable in darkness but it is stabilized by red and far-red light. Together, our data suggest that light-stabilized GIL1 inhibits the negative gravitropism of hypocotyls by suppressing the activity of the auxin transporter PIN3, thereby enhancing the emergence of young seedlings from the soil.
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Light-stabilized GRAVITROPIC IN THE LIGHT 1 inhibits the negative gravitropism of hypocotyls by suppressing the activity of the auxin transporter PIN-FORMED 3, thereby enhancing the emergence of young seedlings from the soil.
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Green light mediates atypical photomorphogenesis by dual modulation of
Arabidopsis
phytochromes B and A
Miqi Xu, Yi-Yuan Wang, Yujie Wu, Xiuhong Zhou, Ziyan Shan, Kunying Tao, Kaiqiang Qian, Xuncheng Wang, Jian Li, Qingqing Wu, Xing Wang Deng, Jun-Jie Ling
J Integr Plant Biol 2024, 66 (9): 1915-1933.
DOI:
10.1111/jipb.13742
Abstract
(Browse
531
) |
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Although green light (GL) is located in the middle of the visible light spectrum and regulates a series of plant developmental processes, the mechanism by which it regulates seedling development is largely unknown. In this study, we demonstrated that GL promotes atypical photomorphogenesis in
Arabidopsis thaliana
via the dual regulations of phytochrome B (phyB) and phyA. Although the Pr-to-Pfr conversion rates of phyB and phyA under GL were lower than those under red light (RL) in a fluence rate-dependent and time-dependent manner, long-term treatment with GL induced high Pfr/Pr ratios of phyB and phyA. Moreover, GL induced the formation of numerous small phyB photobodies in the nucleus, resulting in atypical photomorphogenesis, with smaller cotyledon opening angles and longer hypocotyls in seedlings compared to RL. The abundance of phyA significantly decreased after short- and long-term GL treatments. We determined that four major PHYTOCHROME-INTERACTING FACTORs (PIFs: PIF1, PIF3, PIF4, and PIF5) act downstream of phyB in GL-mediated cotyledon opening. In addition, GL plays opposite roles in regulating different PIFs. For example, under continuous GL, the protein levels of all PIFs decreased, whereas the transcript levels of
PIF4
and
PIF5
strongly increased compared with dark treatment. Taken together, our work provides a detailed molecular framework for understanding the role of the antagonistic regulations of phyB and phyA in GL-mediated atypical photomorphogenesis.
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Green light regulates atypical photomorphogenesis in
Arabidopsis thaliana
via the dual regulations of phytochromes B and A. Although green light activates phyB and phyA, green light retards protein body formation of phyB in the nucleus and decreases the protein levels of phyA.
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BBX9 forms feedback loops with PIFs and BBX21 to promote photomorphogenic development
Zhaoqing Song, Wanying Ye, Qing Jiang, Huan Lin, Qing Hu, Yuntao Xiao, Yeting Bian, Fengyue Zhao, Jie Dong and Dongqing Xu
J Integr Plant Biol 2024, 66 (9): 1934-1952.
DOI:
10.1111/jipb.13746
Abstract
(Browse
410
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Light is one of the most essential environmental factors that tightly and precisely control various physiological and developmental processes in plants. B-box CONTAINING PROTEINs (BBXs) play central roles in the regulation of light-dependent development. In this study, we report that BBX9 is a positive regulator of light signaling. BBX9 interacts with the red light photoreceptor PHYTOCHROME B (phyB) and transcription factors PHYTOCHROME-INTERACTING FACTORs (PIFs). phyB promotes the stabilization of BBX9 in light, while BBX9 inhibits the transcriptional activation activity of PIFs. In turn, PIFs directly bind to the promoter of
BBX9
to repress its transcription. On the other hand, BBX9 associates with the positive regulator of light signaling, BBX21, and enhances its biochemical activity. BBX21 associates with the promoter regions of
BBX9
and transcriptionally up-regulates its expression. Collectively, this study unveiled that BBX9 forms a negative feedback loop with PIFs and a positive one with BBX21 to ensure that plants adapt to fluctuating light conditions.
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The red-light photoreceptor phytochrome B interacts with and stabilizes the B-box protein BBX9 in the light. BBX9 forms a negative feedback loop with PHYTOCHROME-INTERACTING FACTORS (PIFs) and a positive feedback loop with BBX21, ultimately suppressing PIF activity and enhancing BBX21 activity, thus promoting photomorphogenesis.
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The AaBBX21–AaHY5 module mediates light-regulated artemisinin biosynthesis in
Artemisia annua
L.
Weizhi He, Hang Liu, Zhangkuanyu Wu, Qing Miao, Xinyi Hu, Xin Yan, Hangyu Wen, Yaojie Zhang, Xueqing Fu, Li Ren, Kexuan Tang, Ling Li
J Integr Plant Biol 2024, 66 (8): 1735-1751.
doi:
10.1111/jipb.13708
Abstract
(Browse
404
) |
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The sesquiterpene lactone artemisinin is an important anti-malarial component produced by the glandular secretory trichomes of sweet wormwood (
Artemisia annua
L.). Light was previously shown to promote artemisinin production, but the underlying regulatory mechanism remains elusive. In this study, we demonstrate that ELONGATED HYPOCOTYL 5 (HY5), a central transcription factor in the light signaling pathway, cannot promote artemisinin biosynthesis on its own, as the binding of AaHY5 to the promoters of artemisinin biosynthetic genes failed to activate their transcription. Transcriptome analysis and yeast two-hybrid screening revealed the B-box transcription factor AaBBX21 as a potential interactor with AaHY5.
AaBBX21
showed a trichome-specific expression pattern. Additionally, the AaBBX21–AaHY5 complex cooperatively activated transcription from the promoters of the downstream genes
AaGSW1
,
AaMYB108
, and
AaORA
, encoding positive regulators of artemisinin biosynthesis. Moreover, AaHY5 and AaBBX21 physically interacted with the
A. annua
E3 ubiquitin ligase CONSTITUTIVELY PHOTOMORPHOGENIC 1 (COP1). In the dark, AaCOP1 decreased the accumulation of AaHY5 and AaBBX21 and repressed the activation of genes downstream of the AaHY5–AaBBX21 complex, explaining the enhanced production of artemisinin upon light exposure. Our study provides insights into the central regulatory mechanism by which light governs terpenoid biosynthesis in the plant kingdom.
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In
Artemisia annua
, the B-box transcription factor AaBBX21 interacts with ELONGATED HYPOCOTYL5 (AaHY5) to mediate light-regulated artemisinin biosynthesis. The E3 ubiquitin ligase AaCOP1 attenuates AaHY5 and AaBBX21 accumulation, weakening the transcriptional activation activity of the AaBBX21–AaHY5 complex and leading to low artemisinin accumulation in the dark.
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A transcriptional cascade involving BBX22 and HY5 finely regulates both plant height and fruit pigmentation in citrus
Jialing Fu, Li Liao, Jiajing Jin, Zhihao Lu, Juan Sun, Lizhi Song, Yue Huang, Shengjun Liu, Ding Huang, Yuantao Xu, Jiaxian He, Bin Hu, Yiqun Zhu, Fangfang Wu, Xia Wang, Xiuxin Deng, Qiang Xu
J Integr Plant Biol 2024, 66 (8): 1752-1768.
doi:
10.1111/jipb.13719
Abstract
(Browse
375
) |
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Dwarfing is a pivotal agronomic trait affecting both yield and quality. Citrus species exhibit substantial variation in plant height, among which internode length is a core element. However, the molecular mechanism governing internode elongation remains unclear. Here, we unveiled that the transcriptional cascade consisting of
B-BOX DOMAIN PROTEIN 22
(
BBX2
2
)
and
ELONGATED HYPOCOTYL 5
(
HY
5
)
finely tunes plant height and internode elongation in citrus. Loss-of-function mutations of
BBX22
in an early-flowering citrus (
Citrus hindsii
“SJG”) promoted internode elongation and reduced pigment accumulation, whereas ectopic expression of
BBX22
in SJG, sweet orange (
C.
sinensis
), pomelo (
C. maxima
) or heterologous expression of
BBX22
in tomato (
Solanum lycopersicum
) significantly decreased internode length. Furthermore, exogenous application of gibberellin A3 (GA
3
) rescued the shortened internode and dwarf phenotype caused by
BBX22
overexpression. Additional experiments revealed that BBX22 played a dual role in regulation internode elongation and pigmentation in citrus. On the one hand, it directly bound to and activated the expression of
HY5
, GA metabolism gene (
GA2 OXIDASE 8
,
GA2ox8
), carotenoid biosynthesis gene (
PHYTOENE SYNTHASE 1, PSY1
) and anthocyanin regulatory gene (
Ruby1
, a MYB DOMAIN PROTEIN). On the other hand, it acted as a cofactor of HY5, enhancing the ability of HY5 to regulate target genes expression. Together, our results reveal the critical role of the transcriptional cascade consisting of
BBX22
and
HY5
in controlling internode elongation and pigment accumulation in citrus. Unraveling the crosstalk regulatory mechanism between internode elongation and fruit pigmentation provides key genes for breeding of novel types with both dwarf and health-beneficial fortification in citrus.
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The transcriptional cascade involving B-BOX DOMAIN PROTEIN22 and ELONGATED HYPOCOTYL5 controls internode elongation and participates in the crossregulation of fruit pigmentation in citrus. Members of this pathway may prove useful for breeding novel types of dwarf trees with attractive, health-beneficial fruits in citrus.
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Plant photobiology: From basic theoretical research to crop production improvement
Hongtao Liu and Jigang Li
J Integr Plant Biol 2024, 66 (5): 847-848.
doi:
10.1111/jipb.13672
Abstract
(Browse
233
) |
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The dual-action mechanism of Arabidopsis cryptochromes
Gao-Ping Qu, Bochen Jiang and Chentao Lin
J Integr Plant Biol 2024, 66 (5): 883-896.
doi:
10.1111/jipb.13578
Abstract
(Browse
586
) |
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Photoreceptor cryptochromes (CRYs) mediate blue-light regulation of plant growth and development. It has been reported that Arabidopsis CRY1and CRY2 function by physically interacting with at least 84 proteins, including transcription factors or co-factors, chromatin regulators, splicing factors, messenger RNA methyltransferases, DNA repair proteins, E3 ubiquitin ligases, protein kinases and so on. Of these 84 proteins, 47 have been reported to exhibit altered binding affinity to CRYs in response to blue light, and 41 have been shown to exhibit condensation to CRY photobodies. The blue light-regulated composition or condensation of CRY complexes results in changes of gene expression and developmental programs. In this mini-review, we analyzed recent studies of the photoregulatory mechanisms of Arabidopsis CRY complexes and proposed the dual mechanisms of action, including the “Lock-and-Key” and the “Liquid-Liquid Phase Separation (LLPS)” mechanisms. The dual CRY action mechanisms explain, at least partially, the structural diversity of CRY-interacting proteins and the functional diversity of the CRY photoreceptors.
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This mini-review summarizes 84 reported cryptochrome-interacting proteins and their main signal transduction networks, and proposes two mechanisms for cryptochrome action. In the Lock-and-Key mechanism, blue light-induces a change in binding activity between cryptochromes and cryptochrome-interacting proteins; the LLPS mechanism involves blue-light-induced co-condensation of cryptochromes and cryptochrome-interacting proteins.
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RACK1A promotes hypocotyl elongation by scaffolding light signaling components in
Arabidopsis
Yajuan Fu, Wei Zhu, Yeling Zhou, Yujing Su, Zhiyong Li, Dayan Zhang, Dong Zhang, Jinyu Shen and Jiansheng Liang
J Integr Plant Biol 2024, 66 (5): 956-972.
doi:
10.1111/jipb.13651
Abstract
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410
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Plants deploy versatile scaffold proteins to intricately modulate complex cell signaling. Among these, RACK1A (Receptors for Activated C Kinase 1A) stands out as a multifaceted scaffold protein functioning as a central integrative hub for diverse signaling pathways. However, the precise mechanisms by which RACK1A orchestrates signal transduction to optimize seedling development remain largely unclear. Here, we demonstrate that RACK1A facilitates hypocotyl elongation by functioning as a flexible platform that connects multiple key components of light signaling pathways. RACK1A interacts with PHYTOCHROME INTERACTING FACTOR (PIF)3, enhances PIF3 binding to the promoter of
BBX11
and down-regulates its transcription. Furthermore, RACK1A associates with ELONGATED HYPOCOTYL 5 (HY5) to repress HY5 biochemical activity toward target genes, ultimately contributing to hypocotyl elongation. In darkness, RACK1A is targeted by CONSTITUTIVELY PHOTOMORPHOGENIC (COP)1 upon phosphorylation and subjected to COP1-mediated degradation via the 26?S proteasome system. Our findings provide new insights into how plants utilize scaffold proteins to regulate hypocotyl elongation, ensuring proper skoto- and photo-morphogenic development.
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RECEPTORS FOR ACTIVATED C KINASE 1A (RACK1A) enhances PHYTOCHROME-INTERACTING FACTOR3 (PIF3) protein stability and scaffolds PIF3 and ELONGATED HYPOCOTYL5, regulating their activation of target genes. In the light, RACK1A promotes hypocotyl elongation for proper photomorphogenesis; in the dark, phosphorylated RACK1A associates with and is degraded via CONSTITUTIVELY PHOTOMORPHOGENIC1.
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Modulation of starch synthesis in
Arabidopsis
via phytochrome B-mediated light signal transduction
Qingbiao Shi, Ying Xia, Na Xue, Qibin Wang, Qing Tao, Mingjing Li, Di Xu, Xiaofei Wang, Fanying Kong, Haisen Zhang and Gang Li
J Integr Plant Biol 2024, 66 (5): 973-985.
doi:
10.1111/jipb.13630
Abstract
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441
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Starch is a major storage carbohydrate in plants and is critical in crop yield and quality. Starch synthesis is intricately regulated by internal metabolic processes and external environmental cues; however, the precise molecular mechanisms governing this process remain largely unknown. In this study, we revealed that high red to far-red (high R:FR) light significantly induces the synthesis of leaf starch and the expression of synthesis-related genes, whereas low R:FR light suppress these processes.
Arabidopsis
phytochrome B (phyB), the primary R and FR photoreceptor, was identified as a critical positive regulator in this process. Downstream of phyB, basic leucine zipper transcription factor ELONGATED HYPOCOTYL5 (HY5) was found to enhance starch synthesis, whereas the basic helix-loop-helix transcription factors PHYTOCHROME INTERACTING FACTORs (PIF3, PIF4, and PIF5) inhibit starch synthesis in
Arabidopsis
leaves. Notably, HY5 and PIFs directly compete for binding to a shared G-box
cis
-element in the promoter region of genes encoding starch synthases
GBSS
,
SS3
, and
SS4
, which leads to antagonistic regulation of their expression and, consequently, starch synthesis. Our findings highlight the vital role of phyB in enhancing starch synthesis by stabilizing HY5 and facilitating PIFs degradation under high R:FR light conditions. Conversely, under low R:FR light, PIFs predominantly inhibit starch synthesis. This study provides insight into the physiological and molecular functions of phyB and its downstream transcription factors HY5 and PIFs in starch synthesis regulation, shedding light on the regulatory mechanism by which plants synchronize dynamic light signals with metabolic cues to module starch synthesis.
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Phytochrome B (phyB), ELONGATED HYPOCOTYL5 (HY5), and PHYTOCHROME-INTERACTING FACTORS (PIFs) act in light signaling and regulate starch biosynthesis, with phyB and HY5 promoting starch biosynthesis while PIFs inhibit it. The antagonistic regulation between HY5 and PIFs fine-tunes starch biosynthesis in response to dynamic changes in light signals.
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Heat Shock Factor A1s are required for phytochrome-interacting factor 4-mediated thermomorphogenesis in Arabidopsis
Bingjie Li, Shimeng Jiang, Liang Gao, Wenhui Wang, Haozheng Luo, Yining Dong, Zhihua Gao, Shuzhi Zheng, Xinye Liu and Wenqiang Tang
J Integr Plant Biol 2024, 66 (1): 20-35.
DOI:
10.1111/jipb.13579
Abstract
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478
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Thermomorphogenesis and the heat shock (HS) response are distinct thermal responses in plants that are regulated by PHYTOCHROME-INTERACTING FACTOR 4 (PIF4) and HEAT SHOCK FACTOR A1s (HSFA1s), respectively. Little is known about whether these responses are interconnected and whether they are activated by similar mechanisms. An analysis of transcriptome dynamics in response to warm temperature (28℃) treatment revealed that 30 min of exposure activated the expression of a subset of HSFA1 target genes in
Arabidopsis thaliana
. Meanwhile, a loss-of-function
HSFA1
quadruple mutant (
hsfa1-cq
) was insensitive to warm temperature-induced hypocotyl growth. In
hsfa1-cq
plants grown at 28℃, the protein and transcript levels of PIF4 were greatly reduced, and the circadian rhythm of many thermomorphogenesis-related genes (including
PIF4
) was disturbed. Additionally, the nuclear localization of HSFA1s and the binding of HSFA1d to the
PIF4
promoter increased following warm temperature exposure, whereas
PIF4
overexpression in
hsfa1-cq
partially rescued the altered warm temperature-induced hypocotyl growth of the mutant. Taken together, these results suggest that HSFA1s are required for PIF4 accumulation at a warm temperature, and they establish a central role for HSFA1s in regulating both thermomorphogenesis and HS responses in Arabidopsis.
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The HSFA1 heat shock transcription factors play essential roles in regulating warm temperature (~28℃)–induced hypocotyl elongation. HSFA1s are also key regulators of plant heat shock (>32℃) responses, suggesting that plants respond to high temperature via conserved temperature sensing and signaling mechanisms.
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Low temperature-mediated repression and far-red light-mediated induction determine morning
FLOWERING LOCUS T
expression levels
Hayeon Kim, Hye Won Kang, Dae Yeon Hwang, Nayoung Lee, Akane Kubota, Takato Imaizumi and Young Hun Song
J Integr Plant Biol 2024, 66 (1): 103-120.
doi:
10.1111/jipb.13595
Abstract
(Browse
391
) |
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In order to flower in the appropriate season, plants monitor light and temperature changes and alter downstream pathways that regulate florigen genes such as Arabidopsis (
Arabidopsis thaliana
)
FLOWERING LOCUS T
(
FT
). In Arabidopsis,
FT
messenger RNA levels peak in the morning and evening under natural long-day conditions (LDs). However, the regulatory mechanisms governing morning
FT
induction remain poorly understood. The morning
FT
peak is absent in typical laboratory LDs characterized by high red:far-red light (R:FR) ratios and constant temperatures. Here, we demonstrate that ZEITLUPE (ZTL) interacts with the
FT
repressors TARGET OF EATs (TOEs), thereby repressing morning
FT
expression in natural environments. Under LDs with simulated sunlight (R:FR = 1.0) and daily temperature cycles, which are natural LD-mimicking environmental conditions,
FT
transcript levels in the
ztl
mutant were high specifically in the morning, a pattern that was mirrored in the
toe1 toe2
double mutant. Low night-to-morning temperatures increased the inhibitory effect of ZTL on morning
FT
expression by increasing ZTL protein levels early in the morning. Far-red light counteracted ZTL activity by decreasing its abundance (possibly via phytochrome A (phyA)) while increasing GIGANTEA (GI) levels and negatively affecting the formation of the ZTL–GI complex in the morning. Therefore, the phyA-mediated high-irradiance response and GI play pivotal roles in morning
FT
induction. Our findings suggest that the delicate balance between low temperature-mediated ZTL activity and the far-red light-mediated functions of phyA and GI offers plants flexibility in fine-tuning their flowering time by controlling
FT
expression in the morning.
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In Arabidopsis, ZEITLUPE interacts with
FLOWERING LOCUS T
(
FT
) repressors and inhibits morning FT expression in response to low night-to-morning temperatures. The functions of phytochrome A and GIGANTEA mediated by far-red light counteract ZEITLUPE activity, resulting in high morning
FT
induction.
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No. 20 Nanxincun, Xiangshan, Beijing 100093, China
Tel: +86 10 6283 6133 Fax: +86 10 8259 2636 E-mail: jipb@ibcas.ac.cn
Copyright © 2022 by the Institute of Botany, the Chinese Academy of Sciences
Online ISSN: 1744-7909 Print ISSN: 1672-9072 CN: 11-5067/Q
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