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Tytuł pozycji:

Transforming nanobodies into high-precision tools for protein function analysis.

Tytuł:
Transforming nanobodies into high-precision tools for protein function analysis.
Autorzy:
Gettemans J; Department of Biomolecular Medicine, Faculty of Medicine and Health Sciences, Ghent University, Ghent, Belgium.
De Dobbelaer B; Department of Biomolecular Medicine, Faculty of Medicine and Health Sciences, Ghent University, Ghent, Belgium.
Źródło:
American journal of physiology. Cell physiology [Am J Physiol Cell Physiol] 2021 Feb 01; Vol. 320 (2), pp. C195-C215. Date of Electronic Publication: 2020 Dec 02.
Typ publikacji:
Journal Article; Research Support, Non-U.S. Gov't; Review
Język:
English
Imprint Name(s):
Original Publication: Bethesda, Md. : American Physiological Society,
MeSH Terms:
Cell Membrane/*metabolism
Cytoplasm/*metabolism
Immunotherapy, Adoptive/*methods
Single-Domain Antibodies/*metabolism
Animals ; Antibodies/immunology ; Antibodies/metabolism ; Blood-Brain Barrier/immunology ; Blood-Brain Barrier/metabolism ; Cell Membrane/immunology ; Cytoplasm/immunology ; Humans ; Immunotherapy, Adoptive/trends ; Intracellular Space/immunology ; Intracellular Space/metabolism ; Proteins/physiology ; Single-Domain Antibodies/immunology
Contributed Indexing:
Keywords: VHH; immunomodulation; intrabody; nanobody; single-domain antibody
Substance Nomenclature:
0 (Antibodies)
0 (Proteins)
0 (Single-Domain Antibodies)
Entry Date(s):
Date Created: 20201202 Date Completed: 20210223 Latest Revision: 20210223
Update Code:
20240105
DOI:
10.1152/ajpcell.00435.2020
PMID:
33264078
Czasopismo naukowe
Single-domain antibodies, derived from camelid heavy antibodies (nanobodies) or shark variable new antigen receptors, have attracted increasing attention in recent years due to their extremely versatile nature and the opportunities they offer for downstream modification. Discovered more than three decades ago, these 120-amino acid (∼15-kDa) antibody fragments are known to bind their target with high specificity and affinity. Key features of nanobodies that make them very attractive include their single-domain nature, small size, and affordable high-level expression in prokaryotes, and their cDNAs are routinely obtained in the process of their isolation. This facilitates and stimulates new experimental approaches. Hence, it allows researchers to formulate new answers to complex biomedical questions. Through elementary PCR-based technologies and chemical modification strategies, their primary structure can be altered almost at leisure while retaining their specificity and biological activity, transforming them into highly tailored tools that meet the increasing demands of current-day biomedical research. In this review, various aspects of camelid nanobodies are expounded, including intracellular delivery in recombinant format for manipulation of, i.e., cytoplasmic targets, their derivatization to improve nanobody orientation as a capturing device, approaches to reversibly bind their target, their potential as protein-silencing devices in cells, the development of strategies to transfer nanobodies through the blood-brain barrier and their application in CAR-T experimentation. We also discuss some of their disadvantages and conclude with future prospects.

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