From Genes to Fisheries: A Synthesis of Current Research in Crustacean Biology and Management
Conflicts of Interest
References
- Giribet, G.; Edgecombe, G.D. Reevaluating the arthropod tree of life. Annu. Rev. Entomol. 2012, 57, 167–186. [Google Scholar] [CrossRef]
- Robinson, J.M.; Barnes, A.D.; Fickling, N.; Costin, S.; Sun, X.; Breed, M.F. Food webs in food webs: The micro–macro interplay of multilayered networks. Trends Ecol. Evol. 2024, 39, 913–922. [Google Scholar] [CrossRef]
- Flecker, A.S.; Twining, C.W.; Schmitz, O.J.; Cooke, S.J.; Hammerschlag, N. Aquatic predators influence micronutrients: Important but understudied. Trends Ecol. Evol. 2019, 34, 882–883. [Google Scholar] [CrossRef] [PubMed]
- Bostock, J.; McAndrew, B.; Richards, R.; Jauncey, K.; Telfer, T.; Lorenzen, K.; Little, D.; Ross, L.; Handisyde, N.; Gatward, I.; et al. Aquaculture: Global status and trends. Philos. Trans. R. Soc. B Biol. Sci. 2010, 365, 2897–2912. [Google Scholar] [CrossRef]
- Fu, Q.; Zhou, J.; Luan, S.; Dai, P.; Lyu, D.; Chen, B.; Luo, K.; Kong, J.; Meng, X. Analysis of elimination effects of inbreeding on genotype frequency in larval stages of Chinese Shrimp. Biology 2024, 13, 268. [Google Scholar] [CrossRef]
- Li, Y.; Cao, S.; Jiang, S.; Huang, J.; Yang, Q.; Jiang, S.; Yang, L.; Zhou, F. Comparative study of nutritional composition, physiological indicators, and genetic diversity in Litopenaeus vannamei from different aquaculture populations. Biology 2024, 13, 722. [Google Scholar] [CrossRef] [PubMed]
- Li, Y.; Chen, J.; Cao, S.; Jiang, Z.; Jiang, S.; Yang, Q.; Yang, L.; Huang, J.; Shi, J.; Ma, Z.; et al. A comprehensive assessment of the nutritional value, antioxidant potential, and genetic diversity of Fenneropenaeus merguiensis from three different regions in China. Biology 2024, 13, 1002. [Google Scholar] [CrossRef] [PubMed]
- Richter, S.; Møller, O.; Wirkner, C. Advances in crustacean phylogenetics. Arthropod. Syst. Phylogeny 2009, 67, 275–286. [Google Scholar] [CrossRef]
- Peres, P.A.; Mantelatto, F.L. Macrogenetics approach reveals spatial trends and drivers of mitochondrial genetic diversity at different biological organization levels in tropical Western Atlantic decapods. Ecol. Evol. 2025, 15, e71372. [Google Scholar] [CrossRef]
- Ding, Y.; Jiang, S.; Jiang, S.; Li, Y.; Yang, Q.; Yang, L.; Huang, J.; Shi, J.; Li, P.; Diao, H.; et al. Metabolic response of black tiger shrimp (Penaeus monodon) to acute ammonia nitrogen stress. Biology 2025, 14, 501. [Google Scholar] [CrossRef]
- Luo, L.; Yang, L.S.; Huang, J.H.; Jiang, S.G.; Zhou, F.L.; Li, Y.D.; Jiang, S.; Yang, Q.B. Effects of different salinity stress on the transcriptomic responses of freshwater crayfish (Procambarus clarkii, Girard, 1852). Biology 2024, 13, 530. [Google Scholar] [CrossRef]
- Ritter, A.; Bridges, C.R.; Auerswald, L. Investigation of the influence of hypercapnia on the physiology of ovigerous West Coast rock lobsters, Jasus lalandii, and their embryonic development. Biology 2025, 14, 132. [Google Scholar] [CrossRef] [PubMed]
- Shi, J.; Jiang, S.; Ding, Y.; Diao, H.; Li, W.; Li, Y.; Huang, J.; Yang, L.; Yang, Q.; Zhou, F. Insights into the regulatory role of microRNAs in Penaeus monodon under moderately low salinity stress. Biology 2025, 14, 440. [Google Scholar] [CrossRef] [PubMed]
- Sun, D.; Lv, J.; Li, Y.; Wu, J.; Liu, P.; Gao, B. Comparative transcriptome analysis of the response to Vibrio parahaemolyticus and low-salinity stress in the swimming crab Portunus trituberculatus. Biology 2023, 12, 1518. [Google Scholar] [CrossRef] [PubMed]
- Wang, D.; Liu, X.; Zhang, J.; Gao, B.; Liu, P.; Li, J.; Meng, X. Identification of neuropeptides using long-read RNA-Seq in the swimming crab Portunus trituberculatus, and their expression profile under acute ammonia stress. Front. Physiol. 2022, 13, 910585. [Google Scholar] [CrossRef]
- Lu, Y.; Liu, Y.; Cao, J.; Zhang, Y.; Zheng, Y.; Wang, F. Waterborne ammonia toxicity damages crustacean hemocytes via lysosome-dependent autophagy: A case study of swimming crabs Portunus trituberculatus. Environ. Res. 2025, 272, 120985. [Google Scholar] [CrossRef]
- Tian, J.; Wang, Y.; Huang, J.; Yan, H.; Duan, Y.; Wang, J.; Zhou, C.; Huang, Z. Effects of dietary Gracilaria lichenoides and Bacillus amyloliquefaciens on growth performance, antioxidant capacity, and intestinal health of Penaeus monodon. Biology 2024, 13, 252. [Google Scholar] [CrossRef]
- Li, W.; Li, E.; Wang, S.; Liu, J.; Wang, M.; Wang, X.; Qin, C.; Qin, J.; Chen, L. Comparative effects of four feed attractants on growth, appetite, digestion and absorption in juvenile Chinese mitten crab, Eriocheir sinensis. Aquaculture 2025, 594, 741441. [Google Scholar] [CrossRef]
- Shen, Q.; Li, S.; Zhang, S.; Xu, J.; Chen, H.; Luo, Q.; Yang, R.; Chen, J. The impact of Neoporphyra haitanensis dietary supplement on astaxanthin esters and fatty acids accumulation associated with immune promotion in Pacific white shrimp, Litopenaeus vannamei. Aquaculture 2024, 593, 741347. [Google Scholar] [CrossRef]
- Kong, D.; Jiang, S.; Shi, J.; Yang, Q.; Huang, J.; Li, Y.; Ding, Y.; Wang, J.; Qi, X.; Liu, T.; et al. Cryopreservation protocol optimization for Penaeus monodon sperm: Reagent screening and parameter refinement. Biology 2025, 14, 408. [Google Scholar] [CrossRef]
- Rakbanjong, N.; Okutsu, T.; Chotigeat, W.; Songnui, A.; Wonglapsuwan, M. Cryopreservation of germ cells of banana shrimp, Fenneropenaeus merguiensis and black tiger shrimp, Penaeus monodon. Mar. Biotechnol. 2021, 23, 590–601. [Google Scholar] [CrossRef] [PubMed]
- Xie, X.; Zhang, J.; Tu, S.; Zhou, Q.; Zhu, D. Corazonin stimulates ecdysteroid synthesis during the molting process of the swimming crab, Portunus trituberculatus. Biology 2024, 13, 630. [Google Scholar] [CrossRef] [PubMed]
- Zhang, L.; Sun, L.; Song, G.; Wang, B.; Cui, Y.; Liu, F.; Li, Y.; Wang, Z. Genome-wide identification and expression of neuropeptides and their expression patterns after RNAi of CHH genes in Pacific white shrimp Litopenaeus vannamei. Biology 2024, 13, 1038. [Google Scholar] [CrossRef] [PubMed]
- Wang, M.; Ye, H.; Miao, L.; Li, X. Role of short neuropeptide F in regulating eyestalk neuroendocrine systems in the mud crab Scylla paramamosain. Aquaculture 2022, 560, 738493. [Google Scholar] [CrossRef]
- Wang, D.; Liu, X.; Shang, Y.; Yu, X.; Gao, B.; Lv, J.; Li, J.; Liu, P.; Li, J.; Meng, X. Ammonia stress disturbs moult signaling in juvenile swimming crab Portunus trituberculatus. Biology 2023, 12, 409. [Google Scholar] [CrossRef]
- Kulmiye, A.J. Evidence of considerable shifts in catch composition in the artisanal spiny lobster fishery in Kenya. Biology 2023, 12, 1477. [Google Scholar] [CrossRef]
- Whankaew, S.; Suksri, P.; Sinprasertporn, A.; Thawonsuwan, J.; Sathapondecha, P. Development of DNA markers for acute hepatopancreatic necrosis disease tolerance in Litopenaeus vannamei through a genome-wide association study. Biology 2024, 13, 731. [Google Scholar] [CrossRef]
- Gireesh, S.; Tıra¸sın, E.M.; Muthu Palani, G.B.; Charles, S.K.; Kadengal, S.T.; Santucci, R.G.; Garla, R.C.; Okba, Z.; Adam, A.M.S.; Dimech, M. Life history traits and fishery dynamics of speckled shrimp, Metapenaeus monoceros (Fabricius, 1798), along the Saudi Arabian Red Sea coast. Biology 2025, 14, 406. [Google Scholar] [CrossRef]
- Solé, M. Statocyst ultrastructure in the Norwegian lobster (Nephrops norvegicus). Biology 2024, 13, 325. [Google Scholar] [CrossRef]
- Wang, Z.; Zheng, Y.; Zhao, X.; Xu, X.; Xu, Z.; Cui, C. Molecular phylogeny and evolution of the Tuerkayana (Decapoda: Brachyura: Gecarcinidae) genus based on whole mitochondrial genome sequences. Biology 2023, 12, 974. [Google Scholar] [CrossRef]
Species Studied | Primary Research Focus | Key Finding/Contribution | Author(s) |
---|---|---|---|
Fenneropenaeus chinensis (shrimp) | Elimination effects of inbreeding on genotype frequency in larval stages. | Showed significant inbreeding depression in larval survival, with selection favoring heterozygotes and increasing population heterozygosity post-elimination. | Fu et al. [5] |
Fenneropenaeus merguiensis (shrimp) | Nutritional value, antioxidant potential, and genetic diversity from three Chinese regions. | Identified a population with superior nutritional quality (ash, protein, EAAs) and relatively higher genetic diversity, highlighting its potential for aquaculture. | Li et al. [7] |
Litopenaeus vannamei (shrimp) | Nutritional composition, physiological indicators, and genetic diversity across different aquaculture populations. | Found consistent nutritional content but significant differences in genetic diversity in different aquaculture populations. | Li et al. [6] |
Litopenaeus vannamei (shrimp) | Genome-wide identification and expression of neuropeptides; expression patterns after CHH gene RNAi. | Identified 125 neuropeptide-encoding genes, noted gene family expansions (ACP, CHH, and PDH), and found most neuropeptide genes downregulated after CHH/VIH silencing. | Zhang et al. [23] |
Litopenaeus vannamei (shrimp) | Development of DNA markers for Acute Hepatopancreatic Necrosis Disease (AHPND) tolerance using GWAS. | Identified four candidate SNPs and 17 InDels associated with AHPND tolerance using DArT sequencing. | Whankaew et al. [27] |
Metapenaeus monoceros (shrimp) | Life history traits and fishery dynamics along the Saudi Arabian Red Sea coast. | Estimated growth parameters, indicated overfishing, and suggested current fishing pressure reduces spawning stock biomass to 23% of unexploited levels. | Gireesh et al. [28] |
Penaeus monodon (shrimp) | Metabolic response to acute ammonia nitrogen stress. | Revealed severe tissue damage, conversion of ammonia to urea for detoxification, increased SOD activity, and inhibited caspase activity, indicating complex metabolic and stress responses. | Ding et al. [10] |
Penaeus monodon (shrimp) | Regulatory role of microRNAs under moderately low salinity stress. | Identified differentially expressed miRNAs in hepatopancreas after low salinity exposure, targeting genes in metabolism, immune response, and stress adaptation pathways. | Shi et al. [13] |
Penaeus monodon (shrimp) | Effects of dietary Gracilaria lichenoides and Bacillus amyloliquefaciens on growth, antioxidant capacity, and intestinal health. | G. lichenoides supplementation significantly improved growth performance; additives enhanced lipase activity and antioxidant gene expression and modulated intestinal microbiota. | Tian et al. [17] |
Penaeus monodon (shrimp) | Optimization of sperm cryopreservation protocol. | Optimized protocol using 10% DMSO with natural seawater, programmable freezing, and 37 °C thawing achieved 85% sperm viability after 15 days with minor acrosomal damage. | Kong et al. [20] |
Procambarus clarkii (crayfish) | Transcriptomic responses to different salinity stress. | Revealed metabolic pathways as primary responses, differential expression of immune/antioxidant genes, and specific signaling pathways (Foxo, Wnt, Hippo, and Notch) activated under high-salinity. | Luo et al. [11] |
Jasus lalandii (lobster) | Influence of hypercapnia on physiology of ovigerous females and embryonic development. | Berried females efficiently respond to acute and chronic hypercapnia by increasing hemolymph bicarbonate; embryo growth and development are not impacted by chronic hypercapnia. | Ritter et al. [12] |
Nephrops norvegicus (lobster) | Statocyst ultrastructure. | Described the fine morphology of the statocyst sensory setae using SEM and TEM, contributing to understanding sound perception. | Solé [29] |
genus Panulirus (lobsters) | Shifts in catch composition in the artisanal spiny lobster fishery. | Revealed considerable shifts in catch composition of Spiny lobsters over time compared to 1970s data, highlighting changes in species dominance in Kenya. | Kulmiye [26] |
Portunus trituberculatus (crab) | Role of corazonin in stimulating ecdysteroid synthesis during molting. | Demonstrated that PtCrz peptide stimulates ecdysteroid levels and related gene expression in vitro and in vivo, potentially via PtCrzR and affecting PtETH expression. | Xie et al. [22] |
Portunus trituberculatus (crab) | Comparative transcriptome analysis of response to Vibrio parahaemolyticus and low-salinity stress. | Identified differentially expressed genes involved in ion transport, immunoregulation, apoptosis, and Hippo signaling pathway under dual stress conditions. | Sun et al. [14] |
genus Tuerkayana (crabs) | Molecular phylogeny and evolution based on whole mitochondrial genome sequences. | Provided mitochondrial evidence for Tuerkayana, clarified Gecarcinidae genera, and identified selective pressure in the nad6 gene. | Wang et al. [30] |
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Duan, Y.; Auerswald, L.; Meng, X. From Genes to Fisheries: A Synthesis of Current Research in Crustacean Biology and Management. Biology 2025, 14, 677. https://doi.org/10.3390/biology14060677
Duan Y, Auerswald L, Meng X. From Genes to Fisheries: A Synthesis of Current Research in Crustacean Biology and Management. Biology. 2025; 14(6):677. https://doi.org/10.3390/biology14060677
Chicago/Turabian StyleDuan, Yafei, Lutz Auerswald, and Xianliang Meng. 2025. "From Genes to Fisheries: A Synthesis of Current Research in Crustacean Biology and Management" Biology 14, no. 6: 677. https://doi.org/10.3390/biology14060677
APA StyleDuan, Y., Auerswald, L., & Meng, X. (2025). From Genes to Fisheries: A Synthesis of Current Research in Crustacean Biology and Management. Biology, 14(6), 677. https://doi.org/10.3390/biology14060677