PHYSIOLOGIA PLANTARUM植物生理学

PHYSIOLOGIA PLANTARUM(英文缩写 PHYSIOL PLANTARUM),ISSN 0031-9317,eISSN 1399-3054,中文译名:植物生理学 是一本学术期刊。本页汇总该期刊的最新影响因子、分区信息以及最新收录于 PubMed 的文献,帮助您快速了解期刊全貌。

2026 年数据 · 影响因子
4.000
JCR 分区
Q1
CAS 分区
B2
近一年发文量
0
本站 PubMed 收录统计

发文量统计区间:2025-09-27 至 2026-09-27,按本站收录文献的发表日期统计。

ISSN: 0031-9317 · eISSN: 1399-3054 · 缩写: PHYSIOL PLANTARUM ·中文: 植物生理学

期刊介绍

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期刊简介

Physiologia Plantarum 是一本历史悠久的国际植物生物学期刊,聚焦植物生理学及其与分子生物学、细胞生物学、环境科学的交叉研究。内容涵盖光合作用、水分关系、矿质营养、生长发育、逆境响应和信号转导等方向。读者群主要为植物科学领域的研究人员、高校教师和研究生,适合希望了解植物功能机制与实验进展的科研人员阅读。

研究方向

主要发表植物生理学及相关领域的原创研究论文、综述和短通讯,主题包括植物对环境胁迫的响应、激素与信号转导、代谢与运输、光合与呼吸、发育调控以及植物与微生物互作等。论文类型以实验性研究为主,兼顾方法学进展和综合性评述。

期刊特色

该刊重视生理机制与实验证据的结合,强调研究问题的生物学意义和数据的可靠性。论文通常要求较完整的实验设计和机理解释,适合从事植物生理、分子生理和逆境生物学的研究者投稿,也适合作为植物科学高年级课程和课题组的参考读物。

投稿难度

投稿难度中等偏上,对研究的创新性、机制深度和实验完整性有一定要求。建议在投稿前明确科学问题,补充必要的生理与分子证据,规范统计分析和图表呈现,并针对植物生理学背景的读者清晰阐述研究意义,不宜仅凭分区或影响因子判断录用难易。

历年影响因子趋势

JCR 数据年份影响因子JCR 分区
20215.081Q1
20226.400Q1
20235.400Q1
20243.600Q1
20254.000Q1

PHYSIOLOGIA PLANTARUM 最新收录文献

  1. JCR分区: Q1 CAS分区: B2 影响因子: 4

    1. How pink is too pink: A tussle between plant and nature.

    作者:
    Divya Mishra
    日期:
    2023-03-01

    Everyone likes to add color to their life, and plants use them too. However, unlike humans, plants contain natural pigments to add color to fruits, leaves, and vegetables. Plants produce a variety of phytopigments, such as flavonoids, carotenoids, and anthocyanins, which play essential roles in plant stress tolerance. Leveraging natural phytopigments to develop stress-resilient crops will require an in-depth understanding of pigment formation and function. In this context, Zhang et al. (2023) studied the role of MYB6 and bHLH111 in enhancing anthocyanin biosynthesis in petals during drought.

  2. JCR分区: Q1 CAS分区: B2 影响因子: 4

    2. Cross-disciplinary insights into the mechanisms of plant cold hardiness: From molecules to ecosystems.

    作者:
    Guillaume Charrier, Ian R Willick, Daisuke Takahashi
    日期:
    2023-03-01

    该文献暂无摘要。

  3. JCR分区: Q1 CAS分区: B2 影响因子: 4

    3. Microalgae from Nordic collections demonstrate biostimulant effect by enhancing plant growth and photosynthetic performance.

    作者:
    Erik Chovanček, João Salazar, Sema Şirin, Yagut Allahverdiyeva
    日期:
    2023-03-01

    We investigated the biostimulant potential of six microalgal species from Nordic collections extracted with two different procedures: thermal hydrolysis with a weak solution of sulfuric acid accompanied by ultrasonication and bead-milling with aqueous extraction followed by centrifugation. To this aim, we designed a phenotyping pipeline consisting of a root growth assay in the model plant Arabidopsis thaliana, complemented with greenhouse experiments to evaluate lettuce yield (Lactuca sativa L. cv. Finstar) and photosynthetic performance. The best-performing hydrolyzed extracts stimulated Arabidopsis root elongation by 8%-13% and lettuce yield by 12%-15%. The in situ measured photosynthetic performance of lettuce was upregulated in the efficient extracts: PSII quantum yield increased by 26%-34%, and thylakoid proton flux increase was in the range of 34%-60%. In contrast, aqueous extracts acquired by bead-milling showed high dependence on biomass concentration in the extract and an overall plant growth enhancement was not attained in any of the applied dosages. Our results indicate that hydrolysis of the biomass can be a decisive factor for rendering effective plant biostimulants from microalgae.

  4. JCR分区: Q1 CAS分区: B2 影响因子: 4

    4. Nitrogen enhances the effect of pre-drought priming against post-anthesis drought stress by regulating starch and protein formation in wheat.

    作者:
    Attiq Ullah, Chengfeng Zhao, Maixi Zhang, Chuanjiao Sun, Xiaoxue Liu, Jingling Hu, Muhammad Zeeshan, Abbu Zaid, Tingbo Dai, Zhongwei Tian
    日期:
    2023-03-01

    Drought stress is one of the most serious environmental stress factor constraining crop production across the globe. Among cereals, wheat grains are very sensitive to drought as a small degree of stress can affect the enzymatic system. This study aimed to investigate whether nitrogen and pre-anthesis drought priming could enhance the action of major regulatory enzymes involved in starch accumulation and protein synthesis in bread wheat (Triticum aestivum L.). For this purpose, cultivars YM-158 (medium gluten) and YM-22 (low gluten) were grown in rain-controlled conditions under two nitrogen levels, that is, N180 (N1) and N300 (N2). Drought priming was applied at the jointing stage and drought stress was applied 7 days after anthesis. Drought stress reduced starch content but enhanced protein content in grains. N2 and primed plants kept higher contents of nonstructural carbohydrates, fructans, and sucrose; with higher activity of sucrose-phosphate synthase in flag leaves. Furthermore, N2 and priming treatments showed higher sink ability to develop grains by showing higher sucrose-to-starch conversion activities of adenosine diphosphate-glucose pyrophosphorylase, uridine diphosphate glucose pyrophosphorylase, sucrose-synthase, soluble-starch synthase, starch branching enzyme, and granule-bound starch synthase as compared to N1 and non-primed treatments. The application of N2 and primed treatment showed a greater ability to maintain grain filling in both cultivars as compared to N1 and non-primed crops. Our study suggested that high nitrogen has the potential to enhance the effect of pre-drought priming to change source-sink relationships and grain yield of wheat under drought stress during the filling process.

  5. JCR分区: Q1 CAS分区: B2 影响因子: 4

    5. Inoculation of ACC deaminase-producing endophytic bacteria down-regulates ethylene-induced pathogenesis-related signaling in red pepper (Capsicum annuum L.) under salt stress.

    作者:
    Aritra Roy Choudhury, Pankaj Trivedi, Jeongyun Choi, Munusamy Madhaiyan, Jung-Ho Park, Wonho Choi, Denver I Walitang, Tongmin Sa
    日期:
    2023-03-01

    Pathogenesis-related (PR) signaling plays multiple roles in plant development under abiotic and biotic stress conditions and is regulated by a plethora of plant physiological as well as external factors. Here, our study was conducted to evaluate the role of an ACC deaminase-producing endophytic bacteria in regulating ethylene-induced PR signaling in red pepper plants under salt stress. We also evaluated the efficiency of the bacteria in down-regulating the PR signaling for efficient colonization and persistence in the plant endosphere. We used a characteristic endophyte, Methylobacterium oryzae CBMB20 and its ACC deaminase knockdown mutant (acdS ). The wild-type M. oryzae CBMB20 was able to decrease ethylene emission by 23% compared to the noninoculated and acdS M. oryzae CBMB20 inoculated plants under salt stress. The increase in ethylene emission resulted in enhanced hydrogen peroxide concentration, phenylalanine ammonia-lyase activity, β-1,3 glucanase activity, and expression profiles of WRKY, CaPR1, and CaPTI1 genes that are typical salt stress and PR signaling factors. Furthermore, the inoculation of both the bacterial strains had shown induction of PR signaling under normal conditions during the initial inoculation period. However, wild-type M. oryzae CBMB20 was able to down-regulate the ethylene-induced PR signaling under salt stress and enhance plant growth and stress tolerance. Collectively, ACC deaminase-producing endophytic bacteria down-regulate the salt stress-mediated PR signaling in plants by regulating the stress ethylene emission levels and this suggests a new paradigm in efficient colonization and persistence of ACC deaminase-producing endophytic bacteria for better plant growth and productivity.

  6. JCR分区: Q1 CAS分区: B2 影响因子: 4

    6. Auxin participates in regulating the leaf curl development of Wucai (Brassica campestris L.).

    作者:
    Jinfeng Hou, Ying Xu, Shengnan Zhang, Xiaona Yang, Shuangshuang Wang, Jie Hong, Cuina Dong, Ping Zhang, Lingyun Yuan, Shidong Zhu, Guohu Chen, Xiaoyan Tang, Xingxue Huang, Jinlong Zhang, Chenggang Wang
    日期:
    2023-03-01

    Wucai (Brassica campestris L. ssp. chinensis var. rosularis Tsen) belongs to the Brassica genus of the Cruciferae family, and its leaf curl is a typical feature that distinguishes Wucai from other nonheading cabbage subspecies. Our previous research found that plant hormones were involved in the development of the leaf curl in Wucai. However, the molecular mechanisms and the hormones regulating the formation of leaf curl in Wucai have not yet been reported. This study aimed to understand the molecular functions related to hormone metabolism during the formation of leaf curl in Wucai. A total of 386 differentially expressed genes (DEGs) were identified by transcriptome sequencing of two different morphological parts of the same leaf of Wucai germplasm W7-2, and 50 DEGs were found to be related to plant hormones, which were mainly involved in the auxin signal transduction pathway. Then, we measured the content of endogenous hormones in two different forms of the same leaf of Wucai germplasm W7-2. A total of 17 hormones with differential content were identified, including auxin, cytokinins, jasmonic acids, salicylic acids, and abscisic acid. And we found that treatment with auxin transport inhibitor N-1-naphthylphthalamic acid can affect the leaf curl phenotype of Wucai and pak choi (Brassica rapa L. subsp. Chinensis). These results indicated that plant hormones, especially auxin, are involved in developing the leaf curl of Wucai. Our findings provide a potentially valuable reference for future research on the development of leaf curls.

  7. JCR分区: Q1 CAS分区: B2 影响因子: 4

    7. Nitrogen control of transpiration in grapevine.

    作者:
    Michele Faralli, Pier Luigi Bianchedi, Claudio Moser, Luana Bontempo, Massimo Bertamini
    日期:
    2023-03-01

    Transpiration per unit of leaf area is the end-product of the root-to-leaf water transport within the plant, and it is regulated by a series of morpho-physiological resistances and hierarchical signals. The rate of water transpired sustains a series of processes such as nutrient absorption and leaf evaporative cooling, with stomata being the end-valves that maintain the optimal water loss under specific degrees of evaporative demand and soil moisture conditions. Previous work provided evidence of a partial modulation of water flux following nitrogen availability linking high nitrate availability with tight stomatal control of transpiration in several species. In this work, we tested the hypothesis that stomatal control of transpiration, among others signals, is partially modulated by soil nitrate ( ) availability in grapevine, with reduced availability (alkaline soil pH, reduced fertilization, and distancing source) associated with decreased water-use efficiency and higher transpiration. We observed a general trend when was limiting with plants increasing either stomatal conductance or root-shoot ratio in four independent experiments with strong associations between leaf water status, stomatal behavior, root aquaporins expression, and xylem sap pH. Carbon and oxygen isotopic signatures confirm the proximal measurements, suggesting the robustness of the signal that persists over weeks and under different gradients of availability and leaf nitrogen content. Nighttime stomatal conductance was unaffected by manipulation treatments, while application of high vapor pressure deficit conditions nullifies the differences between treatments. Genotypic variation for transpiration increase under limited availability was observed between rootstocks indicating that breeding (e.g., for high soil pH tolerance) unintentionally selected for enhanced mass flow nutrient acquisition under restrictive or nutrient-buffered conditions. We provide evidence of a series of specific traits modulated by availability and suggest that fertilization is a potential candidate for optimizing grapevine water-use efficiency and root exploration under the climate-change scenario.

  8. JCR分区: Q1 CAS分区: B2 影响因子: 4

    8. Alternative electron transport pathways contribute to tolerance to high light stress in lichenized algae.

    作者:
    Richard Peter Beckett, Thomas Roach, Farida Minibayeva, Silke Werth
    日期:
    2023-03-01

    The photosynthetic apparatus of lichen photobionts has been well-characterized by chlorophyll fluorescence analysis (e.g., by pulse amplitude modulation [PAM]), which provides a proxy of the activity of photosystem II (PSII) and its antenna. However, such kinetics are unable to directly characterize photosystem I (PSI) activity and the associated alternative electron pathways that may be involved in photoprotection. Instead, PSI can be probed in vivo by near-infrared absorption, measured at the same time as standard chlorophyll fluorescence (e.g., using the WALZ Dual PAM). Here, we used the Dual PAM to investigate cyclic electron flow and photoprotection in a range of mostly temperate lichens sampled from shaded to more open microhabitats. Sun species displayed lower acceptor side limitation of PSI (Y[NA]) early in illumination when compared to shade species, indicative of higher flavodiiron-mediated pseudocyclic electron flow. In response to high irradiance, some lichens accumulate melanin, and Y[NA] was lower and NAD(P)H dehydrogenase (NDH-2)-type cyclic flow was higher in melanised than pale forms. Furthermore, non-photochemical quenching (NPQ) was higher and faster relaxing in shade than sun species, while all lichens displayed high rates of photosynthetic cyclic electron flow. In conclusion, our data suggest that (1) low acceptor side limitation of PSI is important for sun-exposed lichens; (2) NPQ helps shade species tolerate brief exposure to high irradiance; and (3) cyclic electron flow is a prominent feature of lichens regardless of habitat, although NDH-2-type flow is associated with high light acclimation.

  9. JCR分区: Q1 CAS分区: B2 影响因子: 4

    9. Polyamines inhibit abscisic acid-induced stomatal closure by scavenging hydrogen peroxide.

    作者:
    Xu-Dong Liu, Yuan-Yuan Zeng, Xia-Yi Zhang, Xue-Qian Tian, Md Mahadi Hasan, Guang-Qian Yao, Xiang-Wen Fang
    日期:
    2023-03-01

    Stomatal closure is regulated by plant hormones and some small molecules to reduce water loss under stress conditions. Both abscisic acid (ABA) and polyamines alone induce stomatal closure; however, whether the physiological functions of ABA and polyamines are synergistic or antagonistic with respect to inducing stomatal closure is still unknown. Here, stomatal movement in response to ABA and/or polyamines was tested in Vicia faba and Arabidopsis thaliana, and the change in the signaling components under stomatal closure was analyzed. We found that both polyamines and ABA could induce stomatal closure through similar signaling components, including the synthesis of hydrogen peroxide (H O ) and nitric oxide (NO) and the accumulation of Ca . However, polyamines partially inhibited ABA-induced stomatal closure both in epidermal peels and in planta by activating antioxidant enzymes, including superoxide dismutase (SOD), peroxidase (POD), and catalase (CAT), to eliminate the ABA-induced increase in H O . These results strongly indicate that polyamines inhibit abscisic acid-induced stomatal closure, suggesting that polyamines could be used as potential plant growth regulators to increase photosynthesis under mild drought stress.

  10. JCR分区: Q1 CAS分区: B2 影响因子: 4

    10. Identification of ultrastructural and biochemical cuticular markers influencing temperature of ice nucleation in selected genotypes of corn.

    作者:
    Kaila Hamilton, Tawhidur Rahman, Jason Sadowski, Chithra Karunakaran, Karen Tanino
    日期:
    2023-03-01

    Corn is an economically important yet frost-sensitive crop, injured at the moment of ice nucleation. However, the influence of autumn temperatures on subsequent ice nucleation temperature is unknown. A 10-day chilling treatment under phytotron conditions ("mild", 18/6°C) or ("extreme", 10/5°C) generated no-visible damage but induced changes in the cuticle of the four genotypes in this study. The putatively more cold hardy Genotypes 884 and 959 leaves nucleated at colder temperatures compared to the more sensitive Genotypes 675 and 275. After chilling treatment, all four genotypes displayed warmer ice nucleation temperatures, with Genotype 884 expressing the largest shift to warmer nucleation temperatures. Cuticular hydrophobicity reduced while cuticular thickness remained unchanged under the chilling treatment. By contrast, under five-week field conditions, cuticle thickness increased in all genotypes, with Genotype 256 expressing a significantly thinner cuticle. FTIR spectroscopy revealed increases in the spectral regions of cuticular lipids in all genotypes after phytotron chilling treatment, while those spectral regions decreased under field conditions. A total of 142 molecular compounds were detected, with 28 compounds significantly induced under either phytotron or field conditions. Of these, seven compounds were induced under both conditions (Alkanes C31-C33, Ester C44, C46, β-amyrin, and triterpene). While clear differential responses were observed, chilling conditions preceding a frost modified physical and biochemical properties of the leaf cuticle under both phytotron and field conditions indicating this response is dynamic and could be a factor in selecting corn genotypes better adapted to avoiding frost with lower ice nucleation temperature.

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