The Application of the Generalized Additive Model to Represent Macrobenthos near Xiaoqing Estuary, Laizhou Bay

Author:

Liu Lulei123,Li Ang234ORCID,Zhu Ling2,Xue Suyan23,Li Jiaqi23,Zhang Changsheng23,Yu Wenhan23,Ma Zhanfei23,Zhuang Haonan23,Jiang Zengjie2,Mao Yuze23

Affiliation:

1. College of Fisheries and Life Science, Shanghai Ocean University, Shanghai 201306, China

2. Yellow Sea Fisheries Research Institute, Chinese Academy of Fishery Sciences, Qingdao 266071, China

3. Laboratory for Marine Ecology and Environmental Science, Laoshan Laboratory, Qingdao 266237, China

4. School of Fishery, Zhejiang Ocean University, Zhoushan 316022, China

Abstract

Macrobenthos is widely used as an indicator of ecological health in marine monitoring and assessment. The present study aimed to characterize the interrelationships between the distribution of the macrobenthos community and environmental factors near Xiaoqing Estuary, Laizhou Bay. Responses of species richness to environmental factors were studied using the generalized additive model (GAM) and the Margalef diversity index (dM) as indicators of species diversity instead of individual indicator species. Six factors were selected in the optimal model by stepwise regression: sediment factors (organic matter, phosphate, nitrate nitrogen, and ammonium nitrogen) and water factors (salinity, and ammonium nitrogen). The response curves generated by the GAM showed a unimodal relationship among taxa diversity, salinity in water, and sediment organic matter. dM was positively correlated with ammonium nitrogen in water and was negatively correlated with phosphate in the sediment. The model optimized by forward stepwise optimization explained 92.6% of the Margalef diversity index with a small residual (2.67). The model showed good performance, with the measured dM strongly correlated with the predicted dM (Pearson R2 = 0.845, p < 0.05). The current study examined the combined influence of multiple eco-factors on macrobenthos, and the Margalef diversity index of macrobenthos was predicted by the GAM model in a salinity-stressed estuary.

Funder

esearch grants from the Marine S&T Fund of Shandong Province for the Pilot National Laboratory for Marine Science and Technology

Central Public-interest Scientific Institution Basal Research Fund, CAFS

Central Public-interest Scientific Institution Basal Research Fund, YSFRI, CAFS

Publisher

MDPI AG

Subject

General Agricultural and Biological Sciences,General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology

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