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Optimized method for the recombinant production of a sea anemone’s peptide

Mikhail Nikolaevich Tereshin 1, 2
Mikhail Nikolaevich Tereshin
Alina Mikhailovna Komyakova 1
Alina Mikhailovna Komyakova
Vasily Nikolaevich Stepanenko 1
Vasily Nikolaevich Stepanenko
Igor Valentinovich Myagkikh 1
Igor Valentinovich Myagkikh
Natalia Sergeevna Shoshina 1
Natalia Sergeevna Shoshina
Yuliya Vladimirovna Korolkova 1
Yuliya Vladimirovna Korolkova
Elena Vladimirovna Leychenko 3, 4
Elena Vladimirovna Leychenko
Sergei Aleksandrovich Kozlov 1
Sergei Aleksandrovich Kozlov
Published 2022-10-21
CommunicationVolume 32, Issue 6, 745-746
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Tereshin M. N. et al. Optimized method for the recombinant production of a sea anemone’s peptide // Mendeleev Communications. 2022. Vol. 32. No. 6. pp. 745-746.
GOST all authors (up to 50) Copy
Tereshin M. N., Komyakova A. M., Stepanenko V. N., Myagkikh I. V., Shoshina N. S., Korolkova Y. V., Leychenko E. V., Kozlov S. A. Optimized method for the recombinant production of a sea anemone’s peptide // Mendeleev Communications. 2022. Vol. 32. No. 6. pp. 745-746.
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TY - JOUR
DO - 10.1016/j.mencom.2022.11.012
UR - https://mendcomm.colab.ws/publications/10.1016/j.mencom.2022.11.012
TI - Optimized method for the recombinant production of a sea anemone’s peptide
T2 - Mendeleev Communications
AU - Tereshin, Mikhail Nikolaevich
AU - Komyakova, Alina Mikhailovna
AU - Stepanenko, Vasily Nikolaevich
AU - Myagkikh, Igor Valentinovich
AU - Shoshina, Natalia Sergeevna
AU - Korolkova, Yuliya Vladimirovna
AU - Leychenko, Elena Vladimirovna
AU - Kozlov, Sergei Aleksandrovich
PY - 2022
DA - 2022/10/21
PB - Mendeleev Communications
SP - 745-746
IS - 6
VL - 32
ER -
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@article{2022_Tereshin,
author = {Mikhail Nikolaevich Tereshin and Alina Mikhailovna Komyakova and Vasily Nikolaevich Stepanenko and Igor Valentinovich Myagkikh and Natalia Sergeevna Shoshina and Yuliya Vladimirovna Korolkova and Elena Vladimirovna Leychenko and Sergei Aleksandrovich Kozlov},
title = {Optimized method for the recombinant production of a sea anemone’s peptide},
journal = {Mendeleev Communications},
year = {2022},
volume = {32},
publisher = {Mendeleev Communications},
month = {Oct},
url = {https://mendcomm.colab.ws/publications/10.1016/j.mencom.2022.11.012},
number = {6},
pages = {745--746},
doi = {10.1016/j.mencom.2022.11.012}
}
MLA
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Tereshin, Mikhail Nikolaevich, et al. “Optimized method for the recombinant production of a sea anemone’s peptide.” Mendeleev Communications, vol. 32, no. 6, Oct. 2022, pp. 745-746. https://mendcomm.colab.ws/publications/10.1016/j.mencom.2022.11.012.

Keywords

analgesic peptide
biotechnology
fluorescence imaging
production in prokaryotes
SUMO fusion
TRPV1 ion channel

Abstract

The production of the analgesic peptide HCRG21 for medical use is restricted by a number of limitations in the technology. The optimal biotechnological method scalable to industrial has been developed based on the production of a fusion protein containing a special leader, His-tag, and Smt3 sequence upstream in the peptide sequence. The resulting peptide shared its inhibitory activity to TRPV1 ion channel identical to the published early.

References

1.
Kunitz-Type Peptide HCRG21 from the Sea Anemone Heteractis crispa Is a Full Antagonist of the TRPV1 Receptor
Monastyrnaya M., Peigneur S., Zelepuga E., Sintsova O., Gladkikh I., Leychenko E., Isaeva M., Tytgat J., Kozlovskaya E.
Marine Drugs, 2016
2.
Peptide Blocker of Ion Channel TRPV1 Exhibits a Long Analgesic Effect in the Heat Stimulation Model
Sintsova O.V., Palikov V.A., Palikova Y.A., Klimovich A.A., Gladkikh I.N., Andreev Y.A., Monastyrnaya M.M., Kozlovskaya E.P., Dyachenko I.A., Kozlov S.A., Leychenko E.V.
Doklady Biochemistry and Biophysics, 2020
3.
TRPV1 Blocker HCRG21 Suppresses TNF-α Production and Prevents the Development of Edema and Hypersensitivity in Carrageenan-Induced Acute Local Inflammation
Sintsova O., Gladkikh I., Klimovich A., Palikova Y., Palikov V., Styshova O., Monastyrnaya M., Dyachenko I., Kozlov S., Leychenko E.
Biomedicines, 2021
7.
Logashina Y.A., Korolkova Y.V., Maleeva E.E., Osmakov D.I., Kozlov S.A., Andreev Y.A.
Mendeleev Communications, 2020
8.
Tobacco Etch Virus protease: A shortcut across biotechnologies
Cesaratto F., Burrone O.R., Petris G.
Journal of Biotechnology, 2016
9.
A critical review of the methods for cleavage of fusion proteins with thrombin and factor Xa.
Jenny R.J., Mann K.G., Lundblad R.L.
Protein Expression and Purification, 2003
10.
Strategy for improvement of enteropeptidase efficiency in tag removal processes
Gasparian M.E., Bychkov M.L., Dolgikh D.A., Kirpichnikov M.P.
Protein Expression and Purification, 2011
11.
Substrate requirements of human rhinovirus 3C protease for peptide cleavage in vitro.
Cordingley M.G., Callahan P.L., Sardana V.V., Garsky V.M., Colonno R.J.
Journal of Biological Chemistry, 1990
12.
Tandem SUMO fusion vectors for improving soluble protein expression and purification
Guerrero F., Ciragan A., Iwaï H.
Protein Expression and Purification, 2015
13.
Production and Characterization of Hirudin Variant-1 by SUMO Fusion Technology in E. coli
Lu W., Cai X., Gu Z., Huang Y., Xia B., Cao P.
Molecular Biotechnology, 2012
15.
10.1016/j.mencom.2022.11.012_b0075
Masachis
Microbiol. Spectrum, 2018
16.
Pilot production of the recombinant peptide toxin of Heteractis crispa as a potential analgesic by intein-mediated technology
Esipov R.S., Makarov D.A., Stepanenko V.N., Kostromina M.A., Muravyova T.I., Andreev Y.A., Dyachenko I.A., Kozlov S.A., Grishin E.V.
Protein Expression and Purification, 2018