Immunoprotection against lethal effects of Crotalus durissus snake venom elicited by synthetic epitopes trapped in liposomes
INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES
Authors: Vaz de Melo, Patricia D.; Lima, Sabrina de Almeida; Araujo, Priscila; Santos, Raissa Medina; Gonzalez, Edgar; Belo, Andreza Alves; Machado-de-Avila, Ricardo A.; Costal-Oliveira, Fernanda; Soccol, Vanete T.; Guerra-Duarte, Clara; Rezende, Leonides; Chavez-Olortegui, Carlos
Abstract
Snakebites caused by Crotalus genus are the second most frequent in Brazil. Crotoxin is a beta-neurotoxin responsible for the main envenomation effects of Crotalus biting, while crotamine immobilizes the animal hind limbs, contributing to prey immobilization and to envenoming symptoms. As crotoxin and crotamine represent about 90% of Crotalus venom dry weight, these toxins are of great importance for antivenom therapy. In this sense, knowledge regarding the antigenicity/immunogenicity at the molecular level of these toxins can provide valuable information for the improvement of specific antivenoms. Therefore, the aims of this study are the identification of the B-cell epitopes from crotoxin and crotamine; and the characterization of the neutralizing potency of antibodies directed against the corresponding synthetic epitopes defined in the current study. Linear B-cell epitopes were identified using the Spot Synthesis technique probed with specific anti -C. d. terrificus venom horse IgG. One epitope of crotamine (F(12)PKEKICLPPSSDFGKMDCRW(32)) and three of crotoxin (L(10)LVGVEGHLLQFNKMIKFETR(30); Y(43)CGWGGRGRPKDATDRCCFVH(63) and T(118)YKYGYMFYPDSRCRGPSETC(138)) were identified. After synthesis in their soluble form, the peptides mixture correspondent to the mapped epitopes was entrapped in liposomes and used as immunogens for antibody production in rabbits. Anti-synthetic peptide antibodies were able to protect mice from the lethal activity of C. d. terrificus venom. (C) 2020 Elsevier B.V. All rights reserved.
CRISPR-Cas13d for Gene Knockdown and Engineering of CHO Cells
ACS SYNTHETIC BIOLOGY
Authors: Shen, Chih-che; Lin, Mei-Wei; Thi Nguyen, Bao Khanh; Chang, Chin-Wei; Shih, Jie-Ru; Thi Nguyen, Mai Thanh; Chang, Yi-Hao; Hu, Yu-Chen
Abstract
Chinese hamster ovary (CHO) cells are the predominant cell chassis for biopharmaceutical production. Engineering cellular pathways related to cell death, metabolism, and glycosylation in CHO cells is desired but challenging. Here, we present a novel approach that exploits CRISPR-Cas13d for gene silencing and CHO cell engineering. CRISPR-Cas13d is a burgeoning system that exploits Cas13d nuclease and guide RNA (gRNA) for RNA cleavage and gene knockdown. We first showed that CRISPR-Cas13d effectively knocked down exogenous genes in CHO cell lines (K1, DG44, and DUXB11) commonly used for recombinant protein production. We next demonstrated that CRISPR-Cas13d robustly suppressed the expression of exogenous genes and various endogenous genes involved in gene amplification, apoptosis, metabolism, and glycosylation (e.g., GS, BAK, BAX, PDK1, and FUT8) in CHO cells with efficiencies ranging from 60% to 80%, simply by transient transfection. By integrating the entire CRISPR-Cas13d system with the Sleeping Beauty system and optimal gRNA design, we further improved the knockdown efficiency and rapidly generated stable cells with approximate to 80%-90% knockdown. With this approach, we knocked down FUT8 expression for >90% and significantly attenuated the IgG fucosylation. These data altogether implicated the potentials of CRISPR-Cas13d for gene regulation, glycoengineering, and cell engineering of CHO cells.