Seasonal Analysis of Spatial Distribution Patterns and Characteristics of Sepiella maindroni and Sepia kobiensis in the East China Sea Region
Abstract
:Simple Summary
Abstract
1. Introduction
2. Materials and Methods
2.1. Survey Area and Procedures
2.2. Modeling
2.3. Predictions for the Future
3. Results and Discussion
3.1. Seasonal and Spatial Distribution Characteristics of S. maindroni
3.2. Seasonal and Spatial Distribution Characteristics of S. kobiensis
3.3. Range of Environmental Variables for S. maindroni and S. kobiensis
3.4. Most Suitable Habitat Areas for S. maindroni and S. kobiensis in Present and Future Scenarios
4. Conclusions
- (1)
- We found the majority of groups of S. maindroni in the central and southern areas of the East China Sea near the closed fishing lines in spring. In summer, they moved to the southern Yellow Sea near the closed fishing lines and Zhejiang Islands, and in autumn they moved to the central and northern areas of the East China Sea near the closed fishing lines. Finally, in winter they migrated to the northern East China Sea off the Yangtze Estuary areas and the southwest corner of the survey area near the closed fishing lines. Generally, they moved from inshore to offshore areas from spring to winter, which was indicated by the SSS index;
- (2)
- Climate change scenarios indicated that the habitat areas of S. maindroni will shift to the south first and then to the north of the study area with the intensification of CO2 emissions. The habitat area will first expand and then substantially reduce. Generally, the habitat area range in cases of slight CO2 emissions may always be larger than in cases of heavy emissions;
- (3)
- In spring and summer, we found the major groups of S. kobiensis in the southern East China Sea, especially in the southeast offshore corner of the survey area. In autumn, they were distributed in shallow areas, and finally they migrated to the warmer marginal areas in the central and southern East China Sea in winter. Generally, the majority of groups with large numbers of individuals stayed in the overwintering grounds from winter to spring, but the numbers largely decreased in summer when the adults died after releasing eggs. The number of individuals increased in autumn due to the presence of numerous juveniles. Climate change scenarios showed that the rising SST may result in the enlargement of the habitat of this species.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Sepiella maindroni | Sepia kobiensis | |||||||
---|---|---|---|---|---|---|---|---|
Spring | Summer | Autumn | Winter | Spring | Summer | Autumn | Winter | |
Mean CPUEw at all stations | 21.17 | 17.78 | 14.95 | 13.35 | 66.26 | 37.19 | 18.50 | 25.05 |
Mean CPUEw at collection stations | 199.02 | 311.08 | 210.91 | 166.09 | 627.30 | 289.26 | 180.69 | 154.48 |
Value range of CPUEw | 22.30–806.90 | 39.87–1111.20 | 61.04–835.70 | 13.60–311.20 | 13.29–3400.00 | 19.40–1528.36 | 27.69–715.29 | 3.90–672.00 |
Mean CPUEn at all stations | 0.28 | 0.69 | 0.18 | 0.20 | 4.58 | 1.34 | 3.90 | 3.26 |
Mean CPUEn at collection stations | 2.64 | 12.13 | 2.59 | 2.54 | 43.38 | 10.44 | 38.08 | 20.13 |
Value range of CPUEn | 1.00–12.41 | 2.77–30.00 | 1.00–6.00 | 0.97–9.00 | 1.00–200.00 | 1.00–49.09 | 1.00–150.59 | 1.00–170.85 |
Mean AIW | 90.41 | 32.56 | 86.19 | 109.35 | 27.92 | 31.57 | 14.45 | 21.89 |
Value range of AIW | 22.30–213.92 | 4.50–65.98 | 23.00–168.57 | 3.40–276.36 | 1.68–129.00 | 4.44–110.40 | 2.38–66.40 | 1.27–73.58 |
Factor | Spring | Summer | Autumn | Winter |
---|---|---|---|---|
Sepiella maindroni | ||||
Depth (m) | 19.00–101.00 | 20.00–108.00 | 15.00–93.00 | 46.00–92.00 |
SST (°C) | 14.88–23.60 | 25.17–27.50 | 19.13–23.08 | 14.56–17.80 |
SBT (°C) | 11.56–20.16 | 18.43–27.79 | 16.79–21.98 | 14.64–17.27 |
SSS (‰) | 28.80–34.45 | 27.86–33.83 | 31.88–33.99 | 33.50–34.20 |
SBS (‰) | 28.95–34.77 | 30.54–34.61 | 32.00–34.57 | 33.54–34.37 |
SSDO (mg/L) | 7.84–8.35 | 5.32–5.92 | 7.73–8.28 | |
SBDO (mg/L) | 8.04–8.84 | 3.10–6.12 | 7.81–8.26 | |
Sepia kobiensis | ||||
Depth (m) | 56.00–116.00 | 10.00–120.00 | 41.00–115.00 | 60.00–145.00 |
SST (°C) | 16.72–24.56 | 26.11–29.19 | 20.17–24.82 | 14.94–22.34 |
SBT (°C) | 15.16–21.93 | 17.23–28.19 | 18.26–21.99 | 15.10–21.55 |
SSS (‰) | 31.73–34.62 | 32.55–34.30 | 32.71–34.40 | 33.77–34.53 |
SBS (‰) | 33.51–35.08 | 33.68–34.68 | 32.94–34.71 | 33.89–34.72 |
SSDO (mg/L) | 5.11–6.54 | 7.10–8.20 | ||
SBDO (mg/L) | 4.53–6.60 | 7.20–8.17 |
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Xu, M.; Liu, S.; Zhang, H.; Li, Z.; Song, X.; Yang, L.; Tang, B. Seasonal Analysis of Spatial Distribution Patterns and Characteristics of Sepiella maindroni and Sepia kobiensis in the East China Sea Region. Animals 2024, 14, 2716. https://doi.org/10.3390/ani14182716
Xu M, Liu S, Zhang H, Li Z, Song X, Yang L, Tang B. Seasonal Analysis of Spatial Distribution Patterns and Characteristics of Sepiella maindroni and Sepia kobiensis in the East China Sea Region. Animals. 2024; 14(18):2716. https://doi.org/10.3390/ani14182716
Chicago/Turabian StyleXu, Min, Shuhao Liu, Hui Zhang, Zhiguo Li, Xiaojing Song, Linlin Yang, and Baojun Tang. 2024. "Seasonal Analysis of Spatial Distribution Patterns and Characteristics of Sepiella maindroni and Sepia kobiensis in the East China Sea Region" Animals 14, no. 18: 2716. https://doi.org/10.3390/ani14182716
APA StyleXu, M., Liu, S., Zhang, H., Li, Z., Song, X., Yang, L., & Tang, B. (2024). Seasonal Analysis of Spatial Distribution Patterns and Characteristics of Sepiella maindroni and Sepia kobiensis in the East China Sea Region. Animals, 14(18), 2716. https://doi.org/10.3390/ani14182716