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Optimization of Expression and Purification of Recombinant Mouse plac1

BACKGROUND: Placenta-specific 1 (PLAC1) is one of the recently-discovered Cancer-Testis-Placenta (CTP) antigen with restricted normal tissue and ectopic expression in a wide range of cancer cells from different histological origins. The production of recombinant human PLAC1 has already been optimize...

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Autores principales: Rahdan, Shaghayegh, Razavi, Seyed Alireza, Nazari, Mahboobeh, Shojaeian, Sorour, Shokri, Fazel, Amiri, Mohammad Mehdi, Ramezani, Amin, Zarnani, Amir-Hassan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Avicenna Research Institute 2022
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Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9017472/
https://www.ncbi.nlm.nih.gov/pubmed/35509359
http://dx.doi.org/10.18502/ajmb.v14i1.8171
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author Rahdan, Shaghayegh
Razavi, Seyed Alireza
Nazari, Mahboobeh
Shojaeian, Sorour
Shokri, Fazel
Amiri, Mohammad Mehdi
Ramezani, Amin
Zarnani, Amir-Hassan
author_facet Rahdan, Shaghayegh
Razavi, Seyed Alireza
Nazari, Mahboobeh
Shojaeian, Sorour
Shokri, Fazel
Amiri, Mohammad Mehdi
Ramezani, Amin
Zarnani, Amir-Hassan
author_sort Rahdan, Shaghayegh
collection PubMed
description BACKGROUND: Placenta-specific 1 (PLAC1) is one of the recently-discovered Cancer-Testis-Placenta (CTP) antigen with restricted normal tissue and ectopic expression in a wide range of cancer cells from different histological origins. The production of recombinant human PLAC1 has already been optimized; however, no study has been reported so far on the production and purification of mouse plac1. In this study, mouse plac1 expression and purification was optimized in a prokaryotic system and the effects of the generated proteins on inducing humoral responses in mice were investigated. METHODS: A fusion protein containing full extracellular domain of mouse plac1, immunostimulatory peptides, tetanus toxin P2P30 and PADRE and KDEL3 signal (main plac1), and the same fragment without immunostimulatory peptides (control plac1) was produced. To optimize production and purification steps, different parameters including bacterial strain, cultivation temperature, cultivation time, IPTG concentration, culture medium, and also different buffers for purification of the recombinant proteins were tested. After confirming the identity of recombinant plac1 proteins with Western Blotting (WB) and ELISA assays, these proteins were subcutaneously injected in mice with Freund's adjuvant and the anti-plac1 antibody response was detected by ELISA. RESULTS: The optimal expression level of main and control plac1 was obtained in BL21 (DE3) and TB culture medium in the presence of 0.25 mM IPTG after 24 hr of induction at 15°C. The buffer containing 2% sarkosyl produced higher yield and purity. Our results showed specific reactivity of anti-human recombinant plac1 polyclonal antibody with both main and control plac1 recombinant proteins in WB and ELISA analysis. Both proteins induced humoral responses in mice; however, anti-plac1 antibody titer was significantly higher in sera of mice immunized with main compared to control plac1. CONCLUSION: In this study, an optimized protocol for production and purification of mouse plac1 was reported and it was shown that insertion of immunostimulatory peptides in gene construct could efficiently enhance humoral immune responses against mouse plac1, which could potentially augment cellular immune responses against plac1 leading to more effective anti-cancer responses.
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spelling pubmed-90174722022-05-03 Optimization of Expression and Purification of Recombinant Mouse plac1 Rahdan, Shaghayegh Razavi, Seyed Alireza Nazari, Mahboobeh Shojaeian, Sorour Shokri, Fazel Amiri, Mohammad Mehdi Ramezani, Amin Zarnani, Amir-Hassan Avicenna J Med Biotechnol Original Article BACKGROUND: Placenta-specific 1 (PLAC1) is one of the recently-discovered Cancer-Testis-Placenta (CTP) antigen with restricted normal tissue and ectopic expression in a wide range of cancer cells from different histological origins. The production of recombinant human PLAC1 has already been optimized; however, no study has been reported so far on the production and purification of mouse plac1. In this study, mouse plac1 expression and purification was optimized in a prokaryotic system and the effects of the generated proteins on inducing humoral responses in mice were investigated. METHODS: A fusion protein containing full extracellular domain of mouse plac1, immunostimulatory peptides, tetanus toxin P2P30 and PADRE and KDEL3 signal (main plac1), and the same fragment without immunostimulatory peptides (control plac1) was produced. To optimize production and purification steps, different parameters including bacterial strain, cultivation temperature, cultivation time, IPTG concentration, culture medium, and also different buffers for purification of the recombinant proteins were tested. After confirming the identity of recombinant plac1 proteins with Western Blotting (WB) and ELISA assays, these proteins were subcutaneously injected in mice with Freund's adjuvant and the anti-plac1 antibody response was detected by ELISA. RESULTS: The optimal expression level of main and control plac1 was obtained in BL21 (DE3) and TB culture medium in the presence of 0.25 mM IPTG after 24 hr of induction at 15°C. The buffer containing 2% sarkosyl produced higher yield and purity. Our results showed specific reactivity of anti-human recombinant plac1 polyclonal antibody with both main and control plac1 recombinant proteins in WB and ELISA analysis. Both proteins induced humoral responses in mice; however, anti-plac1 antibody titer was significantly higher in sera of mice immunized with main compared to control plac1. CONCLUSION: In this study, an optimized protocol for production and purification of mouse plac1 was reported and it was shown that insertion of immunostimulatory peptides in gene construct could efficiently enhance humoral immune responses against mouse plac1, which could potentially augment cellular immune responses against plac1 leading to more effective anti-cancer responses. Avicenna Research Institute 2022 /pmc/articles/PMC9017472/ /pubmed/35509359 http://dx.doi.org/10.18502/ajmb.v14i1.8171 Text en Copyright© 2022 Avicenna Research Institute https://creativecommons.org/licenses/by-nc/4.0/This is an open access article distributed in accordance with the Creative Commons Attribution Non Commercial (CC BY-NC 4.0) license, which permits others to distribute, remix, adapt, build upon this work non-commercially, and license their derivative works on different terms, provided the original work is properly cited, appropriate credit is given, any changes made indicated, and the use is non-commercial. See: http://creativecommons.org/licenses/by-nc/4.0/ (https://creativecommons.org/licenses/by-nc/4.0/)
spellingShingle Original Article
Rahdan, Shaghayegh
Razavi, Seyed Alireza
Nazari, Mahboobeh
Shojaeian, Sorour
Shokri, Fazel
Amiri, Mohammad Mehdi
Ramezani, Amin
Zarnani, Amir-Hassan
Optimization of Expression and Purification of Recombinant Mouse plac1
title Optimization of Expression and Purification of Recombinant Mouse plac1
title_full Optimization of Expression and Purification of Recombinant Mouse plac1
title_fullStr Optimization of Expression and Purification of Recombinant Mouse plac1
title_full_unstemmed Optimization of Expression and Purification of Recombinant Mouse plac1
title_short Optimization of Expression and Purification of Recombinant Mouse plac1
title_sort optimization of expression and purification of recombinant mouse plac1
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9017472/
https://www.ncbi.nlm.nih.gov/pubmed/35509359
http://dx.doi.org/10.18502/ajmb.v14i1.8171
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