Glycosylation Contributes to Thermostability and Proteolytic Resistance of rFIP-nha (Nectria haematococca)

Author:

Liu Yusi123,Hoppenbrouwers Tamara24,Wang Yulu1,Xie Yingying15ORCID,Wei Xue1,Zhang Haowen1,Du Guoming1,Imam Khandader Md Sharif Uddin1ORCID,Wichers Harry23ORCID,Li Zhen1,Bastiaan-Net Shanna2ORCID

Affiliation:

1. Laboratory of Biomanufacturing and Food Engineering, Institute of Food Science and Technology, Chinese Academy of Agriculture Sciences, Beijing 100193, China

2. Wageningen Food and Biobased Research, Wageningen University and Research, 6708 WG Wageningen, The Netherlands

3. Laboratory of Food Chemistry, Wageningen University, 6708 WG Wageningen, The Netherlands

4. Laboratory of Food Quality and Design, Wageningen University, 6708 WG Wageningen, The Netherlands

5. Beijing SeekGene BioSciences Co., Ltd., Beijing 102206, China

Abstract

Glycosylation is an important post-translational modification of proteins, contributing to protein function, stability and subcellular localization. Fungal immunomodulatory proteins (FIPs) are a group of small proteins with notable immunomodulatory activity, some of which are glycoproteins. In this study, the impact of glycosylation on the bioactivity and biochemical characteristics of FIP-nha (from Nectria haematococca) is described. Three rFIP-nha glycan mutants (N5A, N39A, N5+39A) were constructed and expressed in Pichia pastoris to study the functionality of the specific N-glycosylation on amino acid N5 and N39. Their protein characteristics, structure, stability and activity were tested. WT and mutants all formed tetramers, with no obvious difference in crystal structures. Their melting temperatures were 82.2 °C (WT), 81.4 °C (N5A), 80.7 °C (N39A) and 80.1 °C (N5+39A), indicating that glycosylation improves thermostability of rFIP-nha. Digestion assays showed that glycosylation on either site improved pepsin resistance, while 39N-glycosylation was important for trypsin resistance. Based on the 3D structure and analysis of enzyme cleavage sites, we conclude that glycosylation might interfere with hydrolysis via increasing steric hindrance. WT and mutants exerted similar bioactivity on tumor cell metabolism and red blood cells hemagglutination. Taken together, these findings indicate that glycosylation of FIP-nha impacts its thermostability and digestion resistance.

Funder

National Key Research and Development Plan ‘modern food processing and food storage and transportation technology and equipment’

Dutch Ministry of Agriculture Nature and Food Quality via the knowledge and innovation of KB37 program ‘Healthy and Safe food systems’

China Scholarship Council

Chinese Academic of Agricultural Sciences

Publisher

MDPI AG

Subject

Chemistry (miscellaneous),Analytical Chemistry,Organic Chemistry,Physical and Theoretical Chemistry,Molecular Medicine,Drug Discovery,Pharmaceutical Science

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