[{"issue":"3","volume":49,"researchdata_availability":"upon request","pmid":1,"year":"2026","supplementarymaterial":"yes","ec_funded":1,"intvolume":"        49","status":"public","type":"journal_article","title":"The miniW domain directs polarized membrane localization of non-canonical PINs in Marchantia polymorpha","abstract":[{"text":"This study demonstrates that Marchantia non-canonical PINs are predominantly localized to the plasma membrane, with MpPINX and MpPINW exhibiting asymmetric distribution.\r\nA newly identified miniW domain within the MpPINW hydrophilic loop governs subcellular trafficking and asymmetric PM localization of non-canonical PINs in Marchantia.","lang":"eng"}],"department":[{"_id":"JiFr"}],"OA_type":"closed access","article_processing_charge":"No","quality_controlled":"1","_id":"20818","page":"1505-1508","date_updated":"2026-07-27T10:27:47Z","oa_version":"None","date_published":"2026-03-01T00:00:00Z","external_id":{"pmid":["41340422"]},"doi":"10.1111/pce.70295","article_type":"comment","month":"03","author":[{"orcid":"0000-0001-6152-6637","id":"19BDF720-25A0-11EA-AC6E-928F3DDC885E","first_name":"Han","last_name":"Tang","full_name":"Tang, Han"},{"first_name":"Adrijana","full_name":"Smoljan, Adrijana","last_name":"Smoljan","id":"cced8a85-223e-11ed-af04-b0596c55053b"},{"id":"5c243f41-03f3-11ec-841c-96faf48a7ef9","first_name":"Minxia","full_name":"Zou, Minxia","last_name":"Zou"},{"first_name":"Yuzhou","full_name":"Zhang, Yuzhou","last_name":"Zhang","orcid":"0000-0003-2627-6956","id":"3B6137F2-F248-11E8-B48F-1D18A9856A87"},{"full_name":"Lu, Kuan Ju","last_name":"Lu","first_name":"Kuan Ju"},{"id":"4159519E-F248-11E8-B48F-1D18A9856A87","orcid":"0000-0002-8302-7596","full_name":"Friml, Jiří","last_name":"Friml","first_name":"Jiří"}],"das_tickbox":"1","date_created":"2025-12-14T23:02:05Z","publication":"Plant Cell and Environment","user_id":"2DF688A6-F248-11E8-B48F-1D18A9856A87","acknowledgement":"The authors sincerely thank Dr. Shutang Tan for experimental support and Dr. Barbara Kloeckener Gruissem for critical reading and constructive advice on the manuscript. This study was supported by the European Research Council Advanced Grant (ETAP-742985 to H.T. and J.F.), by the Ministry of Science and Technology (grant 112-2636-B-005-001- to K.-J.L.), and by the Ministry of Education (grant MOE-109-YSFAG-0006-001-P1 to K.-J.L.).","dataavailabilitystatement":"The data that support the findings of this study are available from the corresponding author upon reasonable request.","citation":{"apa":"Tang, H., Smoljan, A., Zou, M., Zhang, Y., Lu, K. J., &#38; Friml, J. (2026). The miniW domain directs polarized membrane localization of non-canonical PINs in Marchantia polymorpha. <i>Plant Cell and Environment</i>. Wiley. <a href=\"https://doi.org/10.1111/pce.70295\">https://doi.org/10.1111/pce.70295</a>","ieee":"H. Tang, A. Smoljan, M. Zou, Y. Zhang, K. J. Lu, and J. Friml, “The miniW domain directs polarized membrane localization of non-canonical PINs in Marchantia polymorpha,” <i>Plant Cell and Environment</i>, vol. 49, no. 3. Wiley, pp. 1505–1508, 2026.","ista":"Tang H, Smoljan A, Zou M, Zhang Y, Lu KJ, Friml J. 2026. The miniW domain directs polarized membrane localization of non-canonical PINs in Marchantia polymorpha. Plant Cell and Environment. 49(3), 1505–1508.","ama":"Tang H, Smoljan A, Zou M, Zhang Y, Lu KJ, Friml J. The miniW domain directs polarized membrane localization of non-canonical PINs in Marchantia polymorpha. <i>Plant Cell and Environment</i>. 2026;49(3):1505-1508. doi:<a href=\"https://doi.org/10.1111/pce.70295\">10.1111/pce.70295</a>","short":"H. Tang, A. Smoljan, M. Zou, Y. Zhang, K.J. Lu, J. Friml, Plant Cell and Environment 49 (2026) 1505–1508.","chicago":"Tang, Han, Adrijana Smoljan, Minxia Zou, Yuzhou Zhang, Kuan Ju Lu, and Jiří Friml. “The MiniW Domain Directs Polarized Membrane Localization of Non-Canonical PINs in Marchantia Polymorpha.” <i>Plant Cell and Environment</i>. Wiley, 2026. <a href=\"https://doi.org/10.1111/pce.70295\">https://doi.org/10.1111/pce.70295</a>.","mla":"Tang, Han, et al. “The MiniW Domain Directs Polarized Membrane Localization of Non-Canonical PINs in Marchantia Polymorpha.” <i>Plant Cell and Environment</i>, vol. 49, no. 3, Wiley, 2026, pp. 1505–08, doi:<a href=\"https://doi.org/10.1111/pce.70295\">10.1111/pce.70295</a>."},"publication_identifier":{"eissn":["1365-3040"],"issn":["0140-7791"]},"day":"01","project":[{"grant_number":"742985","_id":"261099A6-B435-11E9-9278-68D0E5697425","name":"Tracing Evolution of Auxin Transport and Polarity in Plants","call_identifier":"H2020"}],"language":[{"iso":"eng"}],"scopus_import":"1","publisher":"Wiley","publication_status":"published"},{"article_processing_charge":"No","page":"1846-1857","_id":"9189","quality_controlled":"1","abstract":[{"text":"Transposable elements exist widely throughout plant genomes and play important roles in plant evolution. Auxin is an important regulator that is traditionally associated with root development and drought stress adaptation. The DEEPER ROOTING 1 (DRO1) gene is a key component of rice drought avoidance. Here, we identified a transposon that acts as an autonomous auxin‐responsive promoter and its presence at specific genome positions conveys physiological adaptations related to drought avoidance. Rice varieties with high and auxin‐mediated transcription of DRO1 in the root tip show deeper and longer root phenotypes and are thus better adapted to drought. The INDITTO2 transposon contains an auxin response element and displays auxin‐responsive promoter activity; it is thus able to convey auxin regulation of transcription to genes in its proximity. In the rice Acuce, which displays DRO1‐mediated drought adaptation, the INDITTO2 transposon was found to be inserted at the promoter region of the DRO1 locus. Transgenesis‐based insertion of the INDITTO2 transposon into the DRO1 promoter of the non‐adapted rice variety Nipponbare was sufficient to promote its drought avoidance. Our data identify an example of how transposons can act as promoters and convey hormonal regulation to nearby loci, improving plant fitness in response to different abiotic stresses.","lang":"eng"}],"title":"INDITTO2 transposon conveys auxin-mediated DRO1 transcription for rice drought avoidance","type":"journal_article","isi":1,"department":[{"_id":"JiFr"}],"year":"2021","status":"public","intvolume":"        44","file":[{"file_size":8437528,"file_id":"14481","access_level":"open_access","checksum":"a812418fede076741c9c4dc07f317068","success":1,"file_name":"Zhao PlantCellEnv 2021_accepted.pdf","relation":"main_file","content_type":"application/pdf","date_updated":"2023-11-02T17:02:11Z","creator":"amally","date_created":"2023-11-02T17:02:11Z"}],"has_accepted_license":"1","volume":44,"issue":"6","pmid":1,"file_date_updated":"2023-11-02T17:02:11Z","language":[{"iso":"eng"}],"scopus_import":"1","day":"01","publication_identifier":{"eissn":["1365-3040"],"issn":["0140-7791"]},"publication_status":"published","publisher":"Wiley","user_id":"2DF688A6-F248-11E8-B48F-1D18A9856A87","publication":"Plant, Cell & Environment","date_created":"2021-02-24T10:07:21Z","citation":{"mla":"Zhao, Y., et al. “INDITTO2 Transposon Conveys Auxin-Mediated DRO1 Transcription for Rice Drought Avoidance.” <i>Plant, Cell &#38; Environment</i>, vol. 44, no. 6, Wiley, 2021, pp. 1846–57, doi:<a href=\"https://doi.org/10.1111/pce.14029\">10.1111/pce.14029</a>.","ista":"Zhao Y, Wu L, Fu Q, Wang D, Li J, Yao B, Yu S, Jiang L, Qian J, Zhou X, Han L, Zhao S, Ma C, Zhang Y, Luo C, Dong Q, Li S, Zhang L, Jiang X, Li Y, Luo H, Li K, Yang J, Luo Q, Li L, Peng S, Huang H, Zuo Z, Liu C, Wang L, Li C, He X, Friml J, Du Y. 2021. INDITTO2 transposon conveys auxin-mediated DRO1 transcription for rice drought avoidance. Plant, Cell &#38; Environment. 44(6), 1846–1857.","short":"Y. Zhao, L. Wu, Q. Fu, D. Wang, J. Li, B. Yao, S. Yu, L. Jiang, J. Qian, X. Zhou, L. Han, S. Zhao, C. Ma, Y. Zhang, C. Luo, Q. Dong, S. Li, L. Zhang, X. Jiang, Y. Li, H. Luo, K. Li, J. Yang, Q. Luo, L. Li, S. Peng, H. Huang, Z. Zuo, C. Liu, L. Wang, C. Li, X. He, J. Friml, Y. Du, Plant, Cell &#38; Environment 44 (2021) 1846–1857.","chicago":"Zhao, Y, L Wu, Q Fu, D Wang, J Li, B Yao, S Yu, et al. “INDITTO2 Transposon Conveys Auxin-Mediated DRO1 Transcription for Rice Drought Avoidance.” <i>Plant, Cell &#38; Environment</i>. Wiley, 2021. <a href=\"https://doi.org/10.1111/pce.14029\">https://doi.org/10.1111/pce.14029</a>.","ama":"Zhao Y, Wu L, Fu Q, et al. INDITTO2 transposon conveys auxin-mediated DRO1 transcription for rice drought avoidance. <i>Plant, Cell &#38; Environment</i>. 2021;44(6):1846-1857. doi:<a href=\"https://doi.org/10.1111/pce.14029\">10.1111/pce.14029</a>","ieee":"Y. Zhao <i>et al.</i>, “INDITTO2 transposon conveys auxin-mediated DRO1 transcription for rice drought avoidance,” <i>Plant, Cell &#38; Environment</i>, vol. 44, no. 6. Wiley, pp. 1846–1857, 2021.","apa":"Zhao, Y., Wu, L., Fu, Q., Wang, D., Li, J., Yao, B., … Du, Y. (2021). INDITTO2 transposon conveys auxin-mediated DRO1 transcription for rice drought avoidance. <i>Plant, Cell &#38; Environment</i>. Wiley. <a href=\"https://doi.org/10.1111/pce.14029\">https://doi.org/10.1111/pce.14029</a>"},"month":"06","oa":1,"ddc":["580"],"article_type":"original","doi":"10.1111/pce.14029","author":[{"last_name":"Zhao","full_name":"Zhao, Y","first_name":"Y"},{"last_name":"Wu","full_name":"Wu, L","first_name":"L"},{"first_name":"Q","full_name":"Fu, Q","last_name":"Fu"},{"first_name":"D","full_name":"Wang, D","last_name":"Wang"},{"first_name":"J","full_name":"Li, J","last_name":"Li"},{"full_name":"Yao, B","last_name":"Yao","first_name":"B"},{"full_name":"Yu, S","last_name":"Yu","first_name":"S"},{"first_name":"L","full_name":"Jiang, L","last_name":"Jiang"},{"last_name":"Qian","full_name":"Qian, J","first_name":"J"},{"first_name":"X","full_name":"Zhou, X","last_name":"Zhou"},{"first_name":"L","full_name":"Han, L","last_name":"Han"},{"first_name":"S","last_name":"Zhao","full_name":"Zhao, S"},{"first_name":"C","full_name":"Ma, C","last_name":"Ma"},{"last_name":"Zhang","full_name":"Zhang, Y","first_name":"Y"},{"first_name":"C","full_name":"Luo, C","last_name":"Luo"},{"first_name":"Q","last_name":"Dong","full_name":"Dong, Q"},{"last_name":"Li","full_name":"Li, S","first_name":"S"},{"first_name":"L","last_name":"Zhang","full_name":"Zhang, L"},{"first_name":"X","last_name":"Jiang","full_name":"Jiang, X"},{"first_name":"Y","full_name":"Li, Y","last_name":"Li"},{"first_name":"H","full_name":"Luo, H","last_name":"Luo"},{"first_name":"K","last_name":"Li","full_name":"Li, K"},{"first_name":"J","last_name":"Yang","full_name":"Yang, J"},{"first_name":"Q","full_name":"Luo, Q","last_name":"Luo"},{"first_name":"L","last_name":"Li","full_name":"Li, L"},{"first_name":"S","last_name":"Peng","full_name":"Peng, S"},{"full_name":"Huang, H","last_name":"Huang","first_name":"H"},{"first_name":"Z","full_name":"Zuo, Z","last_name":"Zuo"},{"full_name":"Liu, C","last_name":"Liu","first_name":"C"},{"first_name":"L","last_name":"Wang","full_name":"Wang, L"},{"full_name":"Li, C","last_name":"Li","first_name":"C"},{"full_name":"He, X","last_name":"He","first_name":"X"},{"orcid":"0000-0002-8302-7596","id":"4159519E-F248-11E8-B48F-1D18A9856A87","first_name":"Jiří","last_name":"Friml","full_name":"Friml, Jiří"},{"last_name":"Du","full_name":"Du, Y","first_name":"Y"}],"date_published":"2021-06-01T00:00:00Z","oa_version":"Submitted Version","date_updated":"2023-11-07T08:18:36Z","external_id":{"pmid":["33576018"],"isi":["000625398600001"]}},{"year":"2019","intvolume":"        42","status":"public","volume":42,"issue":"3","pmid":1,"article_processing_charge":"No","OA_type":"free access","page":"1033-1044","_id":"5830","quality_controlled":"1","abstract":[{"lang":"eng","text":"CLE peptides have been implicated in various developmental processes of plants and mediate their responses to environmental stimuli. However, the biological relevance of most CLE genes remains to be functionally characterized. Here, we report that CLE9, which is expressed in stomata, acts as an essential regulator in the induction of stomatal closure. Exogenous application of CLE9 peptides or overexpression of CLE9 effectively led to stomatal closure and enhanced drought tolerance, whereas CLE9 loss-of-function mutants were sensitivity to drought stress. CLE9-induced stomatal closure was impaired in abscisic acid (ABA)-deficient mutants, indicating that ABA is required for CLE9-medaited guard cell signalling. We further deciphered that two guard cell ABA-signalling components, OST1 and SLAC1, were responsible for CLE9-induced stomatal closure. MPK3 and MPK6 were activated by the CLE9 peptide, and CLE9 peptides failed to close stomata in mpk3 and mpk6 mutants. In addition, CLE9 peptides stimulated the induction of hydrogen peroxide (H2O2) and nitric oxide (NO) synthesis associated with stomatal closure, which was abolished in the NADPH oxidase-deficient mutants or nitric reductase mutants, respectively. Collectively, our results reveal a novel ABA-dependent function of CLE9 in the regulation of stomatal apertures, thereby suggesting a potential role of CLE9 in the stress acclimatization of plants."}],"title":"CLE9 peptide-induced stomatal closure is mediated by abscisic acid, hydrogen peroxide, and nitric oxide in arabidopsis thaliana","type":"journal_article","isi":1,"department":[{"_id":"JiFr"}],"month":"03","ddc":["580"],"oa":1,"main_file_link":[{"open_access":"1","url":"https://www.ncbi.nlm.nih.gov/pubmed/30378140"}],"article_type":"original","OA_place":"publisher","doi":"10.1111/pce.13475","author":[{"full_name":"Zhang, Luosha","last_name":"Zhang","first_name":"Luosha"},{"first_name":"Xiong","last_name":"Shi","full_name":"Shi, Xiong"},{"first_name":"Yutao","full_name":"Zhang, Yutao","last_name":"Zhang"},{"first_name":"Jiajing","full_name":"Wang, Jiajing","last_name":"Wang"},{"first_name":"Jingwei","full_name":"Yang, Jingwei","last_name":"Yang"},{"first_name":"Takashi","full_name":"Ishida, Takashi","last_name":"Ishida"},{"first_name":"Wenqian","last_name":"Jiang","full_name":"Jiang, Wenqian"},{"full_name":"Han, Xiangyu","last_name":"Han","first_name":"Xiangyu"},{"full_name":"Kang, Jingke","last_name":"Kang","first_name":"Jingke"},{"full_name":"Wang, Xuening","last_name":"Wang","first_name":"Xuening"},{"first_name":"Lixia","full_name":"Pan, Lixia","last_name":"Pan"},{"first_name":"Shuo","last_name":"Lv","full_name":"Lv, Shuo"},{"first_name":"Bing","full_name":"Cao, Bing","last_name":"Cao"},{"last_name":"Zhang","full_name":"Zhang, Yonghong","first_name":"Yonghong"},{"full_name":"Wu, Jinbin","last_name":"Wu","first_name":"Jinbin"},{"last_name":"Han","full_name":"Han, Huibin","first_name":"Huibin","id":"31435098-F248-11E8-B48F-1D18A9856A87"},{"first_name":"Zhubing","last_name":"Hu","full_name":"Hu, Zhubing"},{"full_name":"Cui, Langjun","last_name":"Cui","first_name":"Langjun"},{"first_name":"Shinichiro","full_name":"Sawa, Shinichiro","last_name":"Sawa"},{"last_name":"He","full_name":"He, Junmin","first_name":"Junmin"},{"first_name":"Guodong","last_name":"Wang","full_name":"Wang, Guodong"}],"date_published":"2019-03-01T00:00:00Z","oa_version":"Published Version","date_updated":"2026-06-18T18:56:52Z","external_id":{"isi":["000459014800021"],"pmid":["30378140"]},"language":[{"iso":"eng"}],"scopus_import":"1","day":"01","publication_identifier":{"issn":["0140-7791"]},"publication_status":"published","publisher":"Wiley","acknowledgement":"We thank Drs. Juan Xu, Yongfeng Guo, and Annie Marion-Poll for sharing materials. We are grateful to Profs. Xiaoping She for helpful discussion and Zhezhi Wang for his generosity in providing laboratory facilities. The study is supported by the National Natural Science Foundation of China (31771556, 31271575, and 31200902 to G. W.), by the 100-Talent Program of Shaanxi Province (to G. W.), by the Fundamental Research Funds for the Central Universities (GK201702016 to G. W.; GK201603110 to L. C.), partly by the open funds of the State Key Laboratory of Plant Physiology and Biochemistry (SKLPPBKF1805), and by the Initial Project for Post-Graduates of Hubei University of Medicine (2016QDJZR14 to Y. Z.).","user_id":"2DF688A6-F248-11E8-B48F-1D18A9856A87","publication":"Plant Cell and Environment","date_created":"2019-01-13T22:59:11Z","citation":{"mla":"Zhang, Luosha, et al. “CLE9 Peptide-Induced Stomatal Closure Is Mediated by Abscisic Acid, Hydrogen Peroxide, and Nitric Oxide in Arabidopsis Thaliana.” <i>Plant Cell and Environment</i>, vol. 42, no. 3, Wiley, 2019, pp. 1033–44, doi:<a href=\"https://doi.org/10.1111/pce.13475\">10.1111/pce.13475</a>.","apa":"Zhang, L., Shi, X., Zhang, Y., Wang, J., Yang, J., Ishida, T., … Wang, G. (2019). CLE9 peptide-induced stomatal closure is mediated by abscisic acid, hydrogen peroxide, and nitric oxide in arabidopsis thaliana. <i>Plant Cell and Environment</i>. Wiley. <a href=\"https://doi.org/10.1111/pce.13475\">https://doi.org/10.1111/pce.13475</a>","ieee":"L. Zhang <i>et al.</i>, “CLE9 peptide-induced stomatal closure is mediated by abscisic acid, hydrogen peroxide, and nitric oxide in arabidopsis thaliana,” <i>Plant Cell and Environment</i>, vol. 42, no. 3. Wiley, pp. 1033–1044, 2019.","short":"L. Zhang, X. Shi, Y. Zhang, J. Wang, J. Yang, T. Ishida, W. Jiang, X. Han, J. Kang, X. Wang, L. Pan, S. Lv, B. Cao, Y. Zhang, J. Wu, H. Han, Z. Hu, L. Cui, S. Sawa, J. He, G. Wang, Plant Cell and Environment 42 (2019) 1033–1044.","ista":"Zhang L, Shi X, Zhang Y, Wang J, Yang J, Ishida T, Jiang W, Han X, Kang J, Wang X, Pan L, Lv S, Cao B, Zhang Y, Wu J, Han H, Hu Z, Cui L, Sawa S, He J, Wang G. 2019. CLE9 peptide-induced stomatal closure is mediated by abscisic acid, hydrogen peroxide, and nitric oxide in arabidopsis thaliana. Plant Cell and Environment. 42(3), 1033–1044.","ama":"Zhang L, Shi X, Zhang Y, et al. CLE9 peptide-induced stomatal closure is mediated by abscisic acid, hydrogen peroxide, and nitric oxide in arabidopsis thaliana. <i>Plant Cell and Environment</i>. 2019;42(3):1033-1044. doi:<a href=\"https://doi.org/10.1111/pce.13475\">10.1111/pce.13475</a>","chicago":"Zhang, Luosha, Xiong Shi, Yutao Zhang, Jiajing Wang, Jingwei Yang, Takashi Ishida, Wenqian Jiang, et al. “CLE9 Peptide-Induced Stomatal Closure Is Mediated by Abscisic Acid, Hydrogen Peroxide, and Nitric Oxide in Arabidopsis Thaliana.” <i>Plant Cell and Environment</i>. Wiley, 2019. <a href=\"https://doi.org/10.1111/pce.13475\">https://doi.org/10.1111/pce.13475</a>."}}]
