Prokaryotic Expression and Functional Verification of Antimicrobial Peptide LRGG

Author:

Liu Xiang1ORCID,Ding Yining1,Shen Yuhan1,Liu Sizhuo1,Liu Yuehua2,Wang Yuting1,Wang Shikun12,Gualerzi Claudio Orlando3,Fabbretti Attilio3,Guan Lili1,Kong Lingcong1,Zhang Haipeng1,Ma Hongxia1ORCID,He Chengguang1

Affiliation:

1. Engineering Research Center, The Chinese Ministry of Education for Bioreactor and Pharmaceutical Development, College of Life Sciences, Jilin Agricultural University, Changchun 130118, China

2. Westlake Laboratory of Life Sciences and Biomedicine, Hangzhou 310024, China

3. School of Biosciences and Veterinary Medicine, University of Camerino, 62032 Camerino, Italy

Abstract

The antimicrobial peptide LRGG (LLRLLRRGGRRLLRLL-NH2) was designed and chemically synthesized in a study conducted by Jia et al. Gram-negative bacteria were found to be sensitive to LRGG and exhibited a high therapeutic index. Genetic engineering methods were used to create the prokaryotic fusion expression vector pQE-GFP-LRGG, and the resulting corresponding fusion protein GFP-LRGG was subsequently expressed and purified. The precursor GFP was then removed by TEV proteolysis, and pure LRGG was obtained after another round of purification and endotoxin removal. The prokaryotic-expressed antimicrobial peptide LRGG displays a broad-spectrum antibacterial effect on Gram-negative bacteria, and its minimum inhibitory activity (MIC) against Escherichia coli can reach 2 μg/mL. Compared to the chemically synthesized LRGG, the prokaryotic-expressed LRGG exhibits similar temperature, pH, salt ion, serum stability, and cell selectivity. Furthermore, prokaryotic-expressed LRGG showed excellent therapeutic effects in both the infection model of cell selectivity and no embryotoxicity in a Galleria mellonella infection model. The mechanism by which LRGG causes bacterial death was found to be the disruption of the Gram-negative cell membrane.

Funder

Jilin Scientific and Technological Development Program

Engineering Research Center of Bioreactor and Pharmaceutical Development, Ministry of Education

Publisher

MDPI AG

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