The DnaJ-Hsp70-Hsp90 co-chaperon networks in scallops under toxic Alexandrium dinoflagellates exposure

Heat shock proteins (Hsps) are highly conserved molecular chaperones with essential roles against biotic and abiotic stressors. A large set of co-chaperons comprising J-domain proteins (DnaJs) regulate the ATPase cycle of Hsp70s with Hsp90s, together constituting a dynamic and functionally versatile...

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Main Authors: Moli Li, Jie Cheng, Huizhen Wang, Jiaoxia Shi, Xiaogang Xun, Wei Lu, Xubo Wang, Jingjie Hu, Zhenmin Bao, Xiaoli Hu
Format: Article
Language:English
Published: Elsevier 2025-01-01
Series:Ecotoxicology and Environmental Safety
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Online Access:http://www.sciencedirect.com/science/article/pii/S0147651324017299
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author Moli Li
Jie Cheng
Huizhen Wang
Jiaoxia Shi
Xiaogang Xun
Wei Lu
Xubo Wang
Jingjie Hu
Zhenmin Bao
Xiaoli Hu
author_facet Moli Li
Jie Cheng
Huizhen Wang
Jiaoxia Shi
Xiaogang Xun
Wei Lu
Xubo Wang
Jingjie Hu
Zhenmin Bao
Xiaoli Hu
author_sort Moli Li
collection DOAJ
description Heat shock proteins (Hsps) are highly conserved molecular chaperones with essential roles against biotic and abiotic stressors. A large set of co-chaperons comprising J-domain proteins (DnaJs) regulate the ATPase cycle of Hsp70s with Hsp90s, together constituting a dynamic and functionally versatile network for protein folding/unfolding and regulation. Marine bivalves could accumulate and tolerate paralytic shellfish toxins (PSTs), the well-noted neurotoxins generated during harmful algal blooms. Here, 37 CfDnaJ and 35 PyDnaJ genes were systematically characterized in Zhikong scallop (Chlamys farreri) and Yesso scallop (Patinopecten yessoensis), the important aquaculture bivalve species in China. After exposure to different PST-producing dinoflagellates, Alexandrium minutum and Alexandrium catenella, diverse DnaJ regulations were presented in scallop hepatopancreas, accumulating incoming PSTs, and kidneys, transforming PSTs into higher toxic analogs. CfDnaJs’ up-regulation in kidneys was similar with that in hepatopancreas, while their down-regulation was stronger in kidneys than in hepatopancreas, with CFA.38965.19.DNAJC30 being continuously down-regulated in both tissues of the two algae exposure. Moreover, PyDnaJs’ up-regulation was only found in kidneys after A. catenella exposure, and PYE.10799.6.DNAJB1 was down-regulated in both tissues through the experiment. Together with the expression trends and correlation of DnaJ-Hsp70-Hsp90 genes, the organ-, toxin-, and species-dependent Hsp70B2 expressions were coordinately co-expressed with diverse DnaJ members, suggesting the functional diversity of scallop DnaJs with conserved Hsp70B2s in response to stress by PST-producing algae. Our results confirmed the regulated coordination of DnaJ-Hsp70B2 co-chaperons in scallops, and provided vital insights into the function and adaptation of scallop Hsps in response to PST stress.
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spelling doaj-art-385946fa2589438a99400b301052fc2c2025-01-23T05:25:59ZengElsevierEcotoxicology and Environmental Safety0147-65132025-01-01289117653The DnaJ-Hsp70-Hsp90 co-chaperon networks in scallops under toxic Alexandrium dinoflagellates exposureMoli Li0Jie Cheng1Huizhen Wang2Jiaoxia Shi3Xiaogang Xun4Wei Lu5Xubo Wang6Jingjie Hu7Zhenmin Bao8Xiaoli Hu9MOE Key Laboratory of Marine Genetics and Breeding, College of Marine Life Sciences (Qingdao 266003), and Key Laboratory of Tropical Aquatic Germplasm of Hainan Province, Sanya Oceanographic Institution (Sanya 572024), Ocean University of China, China; National Key Laboratory of Veterinary Public Health Security, College of Veterinary Medicine, China Agricultural University, Beijing 100193, ChinaMOE Key Laboratory of Marine Genetics and Breeding, College of Marine Life Sciences (Qingdao 266003), and Key Laboratory of Tropical Aquatic Germplasm of Hainan Province, Sanya Oceanographic Institution (Sanya 572024), Ocean University of China, China; Correspondence to: Key Laboratory of Marine Genetics and Breeding (Ocean University of China), Ministry of Education, 5 Yushan Road, Qingdao 266003, China.MOE Key Laboratory of Marine Genetics and Breeding, College of Marine Life Sciences (Qingdao 266003), and Key Laboratory of Tropical Aquatic Germplasm of Hainan Province, Sanya Oceanographic Institution (Sanya 572024), Ocean University of China, ChinaMOE Key Laboratory of Marine Genetics and Breeding, College of Marine Life Sciences (Qingdao 266003), and Key Laboratory of Tropical Aquatic Germplasm of Hainan Province, Sanya Oceanographic Institution (Sanya 572024), Ocean University of China, ChinaMOE Key Laboratory of Marine Genetics and Breeding, College of Marine Life Sciences (Qingdao 266003), and Key Laboratory of Tropical Aquatic Germplasm of Hainan Province, Sanya Oceanographic Institution (Sanya 572024), Ocean University of China, ChinaMOE Key Laboratory of Marine Genetics and Breeding, College of Marine Life Sciences (Qingdao 266003), and Key Laboratory of Tropical Aquatic Germplasm of Hainan Province, Sanya Oceanographic Institution (Sanya 572024), Ocean University of China, ChinaSchool of Marine Sciences, Ningbo University, 169 Qixingnan Road, Ningbo 315832, ChinaMOE Key Laboratory of Marine Genetics and Breeding, College of Marine Life Sciences (Qingdao 266003), and Key Laboratory of Tropical Aquatic Germplasm of Hainan Province, Sanya Oceanographic Institution (Sanya 572024), Ocean University of China, ChinaMOE Key Laboratory of Marine Genetics and Breeding, College of Marine Life Sciences (Qingdao 266003), and Key Laboratory of Tropical Aquatic Germplasm of Hainan Province, Sanya Oceanographic Institution (Sanya 572024), Ocean University of China, ChinaMOE Key Laboratory of Marine Genetics and Breeding, College of Marine Life Sciences (Qingdao 266003), and Key Laboratory of Tropical Aquatic Germplasm of Hainan Province, Sanya Oceanographic Institution (Sanya 572024), Ocean University of China, China; Correspondence to: Key Laboratory of Marine Genetics and Breeding (Ocean University of China), Ministry of Education, 5 Yushan Road, Qingdao 266003, China.Heat shock proteins (Hsps) are highly conserved molecular chaperones with essential roles against biotic and abiotic stressors. A large set of co-chaperons comprising J-domain proteins (DnaJs) regulate the ATPase cycle of Hsp70s with Hsp90s, together constituting a dynamic and functionally versatile network for protein folding/unfolding and regulation. Marine bivalves could accumulate and tolerate paralytic shellfish toxins (PSTs), the well-noted neurotoxins generated during harmful algal blooms. Here, 37 CfDnaJ and 35 PyDnaJ genes were systematically characterized in Zhikong scallop (Chlamys farreri) and Yesso scallop (Patinopecten yessoensis), the important aquaculture bivalve species in China. After exposure to different PST-producing dinoflagellates, Alexandrium minutum and Alexandrium catenella, diverse DnaJ regulations were presented in scallop hepatopancreas, accumulating incoming PSTs, and kidneys, transforming PSTs into higher toxic analogs. CfDnaJs’ up-regulation in kidneys was similar with that in hepatopancreas, while their down-regulation was stronger in kidneys than in hepatopancreas, with CFA.38965.19.DNAJC30 being continuously down-regulated in both tissues of the two algae exposure. Moreover, PyDnaJs’ up-regulation was only found in kidneys after A. catenella exposure, and PYE.10799.6.DNAJB1 was down-regulated in both tissues through the experiment. Together with the expression trends and correlation of DnaJ-Hsp70-Hsp90 genes, the organ-, toxin-, and species-dependent Hsp70B2 expressions were coordinately co-expressed with diverse DnaJ members, suggesting the functional diversity of scallop DnaJs with conserved Hsp70B2s in response to stress by PST-producing algae. Our results confirmed the regulated coordination of DnaJ-Hsp70B2 co-chaperons in scallops, and provided vital insights into the function and adaptation of scallop Hsps in response to PST stress.http://www.sciencedirect.com/science/article/pii/S0147651324017299ScallopHeat shock proteinCo-chaperon networkParalytic shellfish toxinsAlexandrium
spellingShingle Moli Li
Jie Cheng
Huizhen Wang
Jiaoxia Shi
Xiaogang Xun
Wei Lu
Xubo Wang
Jingjie Hu
Zhenmin Bao
Xiaoli Hu
The DnaJ-Hsp70-Hsp90 co-chaperon networks in scallops under toxic Alexandrium dinoflagellates exposure
Ecotoxicology and Environmental Safety
Scallop
Heat shock protein
Co-chaperon network
Paralytic shellfish toxins
Alexandrium
title The DnaJ-Hsp70-Hsp90 co-chaperon networks in scallops under toxic Alexandrium dinoflagellates exposure
title_full The DnaJ-Hsp70-Hsp90 co-chaperon networks in scallops under toxic Alexandrium dinoflagellates exposure
title_fullStr The DnaJ-Hsp70-Hsp90 co-chaperon networks in scallops under toxic Alexandrium dinoflagellates exposure
title_full_unstemmed The DnaJ-Hsp70-Hsp90 co-chaperon networks in scallops under toxic Alexandrium dinoflagellates exposure
title_short The DnaJ-Hsp70-Hsp90 co-chaperon networks in scallops under toxic Alexandrium dinoflagellates exposure
title_sort dnaj hsp70 hsp90 co chaperon networks in scallops under toxic alexandrium dinoflagellates exposure
topic Scallop
Heat shock protein
Co-chaperon network
Paralytic shellfish toxins
Alexandrium
url http://www.sciencedirect.com/science/article/pii/S0147651324017299
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