Citations Report

Pharmaceutical Bioprocessing : Citations & Metrics Report

Articles published in Pharmaceutical Bioprocessing have been cited by esteemed scholars and scientists all around the world.

Pharmaceutical Bioprocessing has got h-index 25, which means every article in Pharmaceutical Bioprocessing has got 25 average citations.

Following are the list of articles that have cited the articles published in Pharmaceutical Bioprocessing.

  2021 2020 2019 2018 2017 2016

Year wise published articles

31 7 5 23 10 17

Year wise citations received

271 188 163 177 175 146
Journal total citations count 1649
Journal impact factor 9.31372549
Journal 5 years impact factor 11.9418604
Journal cite score 13.3492063
Journal h-index 25
Journal h-index since 2018 20
Journal Impact Factor 2020 formula
IF= Citations(y)/{Publications(y-1)+ Publications(y-2)} Y= Year
Journal 5-year Impact Factor 2020 formula
Citations(2016 + 2017 + 2018 + 2019 + 2020)/
{Published articles(2016 + 2017 + 2018 + 2019 + 2020)}
Journal citescore
Citescorey = Citationsy + Citationsy-1 + Citationsy-2 + Citations y-3 / Published articlesy + Published articlesy-1 + Published articlesy-2 + Published articles y-3
  • Wang, Y. (2017). The Role of SNF1-Related Protein Kinase 1 (SnRK1) in regulating intermediary metabolism in Arabidopsis thaliana (Doctoral dissertation). View at Publisher | View at Google Scholar | View at Indexing
  • Rai, U., Sharma, R., & Deshmukh, M. V. (2018). Accessing Structure, Dynamics and Function of Biological Macromolecules by NMR Through Advances in Isotope Labeling. Journal of the Indian Institute of Science, 98(3), 301-323. View at Publisher | View at Google Scholar | View at Indexing
  • Chiba, C. H., Knirsch, M. C., Azzoni, A. R., Moreira, A. R., & Stephano, M. A. (2021). Cell-free protein synthesis: advances on production process for biopharmaceuticals and immunobiological products. BioTechniques, 70(2), 126-133. View at Publisher | View at Google Scholar | View at Indexing
  • Kelly, P. S., Breen, L., Gallagher, C., Kelly, S., Henry, M., Lao, N. T., ... & Barron, N. (2015). Re?programming CHO cell metabolism using miR?23 tips the balance towards a highly productive phenotype. Biotechnology journal, 10(7), 1029-1040. View at Publisher | View at Google Scholar | View at Indexing
  • Kelly, P. S., Gallagher, C., Clynes, M., & Barron, N. (2015). Conserved microRNA function as a basis for Chinese hamster ovary cell engineering. Biotechnology letters, 37(4), 787-798. View at Publisher | View at Google Scholar | View at Indexing
  • Henry, M. N., MacDonald, M. A., Orellana, C. A., Gray, P. P., Gillard, M., Baker, K., ... & Martínez, V. S. (2020). Attenuating apoptosis in Chinese hamster ovary cells for improved biopharmaceutical production. Biotechnology and bioengineering, 117(4), 1187-1203. View at Publisher | View at Google Scholar | View at Indexing
  • Kelly, P. S., Miguez, A. A., Alves, C., & Barron, N. (2018). From media to mitochondria–rewiring cellular energy metabolism of Chinese hamster ovary cells for the enhanced production of biopharmaceuticals. Current opinion in chemical engineering, 22, 71-80. View at Publisher | View at Google Scholar | View at Indexing
  • Kelly, P. S., Dorival?García, N., Paré, S., Carillo, S., Ta, C., Alarcon Miguez, A., ... & Barron, N. (2019). Improvements in single?use bioreactor film material composition leads to robust and reliable Chinese hamster ovary cell performance. Biotechnology progress, 35(4), e2824. View at Publisher | View at Google Scholar | View at Indexing
  • Martinez-Lopez, J. E., Coleman, O., Meleady, P., & Clynes, M. (2021). Transfection of miR-31* boosts oxidative phosphorylation metabolism in the mitochondria and enhances recombinant protein production in Chinese hamster ovary cells. Journal of Biotechnology, 333, 86-96. View at Publisher | View at Google Scholar | View at Indexing
  • Ahmadi, M., Damavandi, N., Akbari, M. R., & Davami, F. (2016). Utilization of site-specific recombination in biopharmaceutical production. Iranian biomedical journal, 20(2), 68. View at Publisher | View at Google Scholar | View at Indexing
  • Van der Weken, H., Cox, E., & Devriendt, B. (2019, April). Rapid production of a chimeric antibody-antigen fusion protein based on 2A-peptide cleavage and green fluorescent protein expression in CHO cells. In MAbs (Vol. 11, No. 3, pp. 559-568). Taylor & Francis. View at Publisher | View at Google Scholar | View at Indexing
  • Wang, T. Y., & Guo, X. (2020). Expression vector cassette engineering for recombinant therapeutic production in mammalian cell systems. Applied microbiology and biotechnology, 104(13), 5673-5688. View at Publisher | View at Google Scholar | View at Indexing
  • Martinez-Lopez, J. E., Coleman, O., Meleady, P., & Clynes, M. (2021). Transfection of miR-31* boosts oxidative phosphorylation metabolism in the mitochondria and enhances recombinant protein production in Chinese hamster ovary cells. Journal of Biotechnology, 333, 86-96. View at Publisher | View at Google Scholar | View at Indexing
  • Lin, J. E., Neo, S. H., Ho, S. C., Yeo, J. H., Wang, T., Zhang, W., ... & Yang, Y. (2017). Impact of Signal Peptides on Furin?2A Mediated Monoclonal Antibody Secretion in CHO Cells. Biotechnology journal, 12(9), 1700268. View at Publisher | View at Google Scholar | View at Indexing
  • Lin, Y., Hung, C. Y., Bhattacharya, C., Nichols, S., Rahimuddin, H., Kittur, F. S., ... & Xie, J. (2018). An effective way of producing fully assembled antibody in transgenic tobacco plants by linking heavy and light chains via a self-cleaving 2A peptide. Frontiers in plant science, 9, 1379. View at Publisher | View at Google Scholar | View at Indexing
  • Kondo, Y., Hattori, K., Tashiro, S., Nakatani, E., Yoshimitsu, R., Satoh, T., ... & Ohnuma, K. (2017). Compartmentalized microfluidic perfusion system to culture human induced pluripotent stem cell aggregates. Journal of bioscience and bioengineering, 124(2), 234-241. View at Publisher | View at Google Scholar | View at Indexing
  • Sugiura, S., Nakazawa, K., Kanamori, T., Ohnuma, K., & Yu, X. Y. (2016). Application of microfluidics in stem cell culture. Advances in Microfluidics—New Applications in Biology, Energy, and Materials Sciences. Yu XY, ed. InTech, Rijeka, 67-90. View at Publisher | View at Google Scholar | View at Indexing
  • Tashiro, S., Le, M. N. T., Kusama, Y., Nakatani, E., Suga, M., Furue, M. K., ... & Ohnuma, K. (2018). High cell density suppresses BMP4-induced differentiation of human pluripotent stem cells to produce macroscopic spatial patterning in a unidirectional perfusion culture chamber. Journal of bioscience and bioengineering, 126(3), 379-388. View at Publisher | View at Google Scholar | View at Indexing
  • Yehl, C. J., & Zydney, A. L. (2021). High Performance Countercurrent Membrane Purification for protein separations. Journal of Membrane Science, 633, 119396. View at Publisher | View at Google Scholar | View at Indexing
  • Yehl, C. J., & Zydney, A. L. (2021). High Performance Countercurrent Membrane Purification for protein separations. Journal of Membrane Science, 633, 119396. View at Publisher | View at Google Scholar | View at Indexing
  • Zhang, G., Liu, J., Fan, W., Chen, Q., & Shi, B. (2017). An efficient transient expression system for enhancing the generation of monoclonal antibodies in 293 suspension cells. Current pharmaceutical biotechnology, 18(4), 351-357. View at Publisher | View at Google Scholar | View at Indexing
  • Graf, T., Tomlinson, A., Yuk, I. H., Kufer, R., Spensberger, B., Falkenstein, R., ... & Leiss, M. (2021). Identification and Characterization of Polysorbate-Degrading Enzymes in a Monoclonal Antibody Formulation. Journal of Pharmaceutical Sciences, 110(11), 3558-3567. View at Publisher | View at Google Scholar | View at Indexing
  • Naderi, F., Hashemi, M., Bayat, H., Mohammadian, O., Pourmaleki, E. H., Etemadzadeh, M. H., & Rahimpour, A. (2018). The augmenting effects of the tDNA insulator on stable expression of monoclonal antibody in chinese hamster ovary cells. Monoclonal antibodies in immunodiagnosis and immunotherapy, 37(5), 200-206. View at Publisher | View at Google Scholar | View at Indexing
  • Jiang, L., Fan, R., Sun, S., Fan, P., Su, W., Zhou, Y., ... & Jiang, C. (2015). A new EV71 VP3 epitope in norovirus P particle vector displays neutralizing activity and protection in vivo in mice. Vaccine, 33(48), 6596-6603. View at Publisher | View at Google Scholar | View at Indexing
  • Ng, D., Zhou, M., Zhan, D., Yip, S., Ko, P., Yim, M., ... & Shen, A. (2021). Development of a targeted integration Chinese hamster ovary host directly targeting either one or two vectors simultaneously to a single locus using the Cre/Lox recombinase?mediated cassette exchange system. Biotechnology Progress, e3140. View at Publisher | View at Google Scholar | View at Indexing
  • Somasundaram, B., Chang, C., Fan, Y. Y., Lim, P. Y., Cardosa, J., & Lua, L. (2016). Characterizing Enterovirus 71 and Coxsackievirus A16 virus-like particles production in insect cells. Methods, 95, 38-45. View at Publisher | View at Google Scholar | View at Indexing
  • Ye, X., Yang, L., Jia, J., Han, J., Li, S., Liu, Y., ... & Xia, N. (2016). Development of sandwich ELISAs that can distinguish different types of coxsackievirus A16 viral particles. Applied microbiology and biotechnology, 100(6), 2809-2815. View at Publisher | View at Google Scholar | View at Indexing
  • Rezaei, M., & Ghaderi, A. (2018). Monoclonal Antibody Production Against Vimentin by Whole Cell Immunization in a Mouse Model. Iranian journal of biotechnology, 16(2). View at Publisher | View at Google Scholar | View at Indexing
  • Liu, X., Yang, Y., Zhang, W., Sun, Y., Peng, F., Jeffrey, L., ... & Bai, Z. (2016). Expression of recombinant protein using Corynebacterium glutamicum: progress, challenges and applications. Critical reviews in biotechnology, 36(4), 652-664. View at Publisher | View at Google Scholar | View at Indexing
  • Yang, Y., You, M., Chen, F., Jia, T., Chen, Y., Zhou, B., ... & Xia, N. (2018). Efficient development of a stable cell pool for antibody production using a single plasmid. The Journal of Biochemistry, 163(5), 391-398. View at Publisher | View at Google Scholar | View at Indexing
  • Chegini, P. P., Nikokar, I., Tabarzad, M., Faezi, S., & Mahboubi, A. (2019). Effect of Amino Acid Substitutions on Biological Activity of Antimicrobial Peptide: Design, Recombinant Production, and Biological Activity. Iranian Journal of Pharmaceutical Research: IJPR, 18(Suppl1), 157. View at Publisher | View at Google Scholar | View at Indexing
  • Bello Hernández, A. J. Evaluation of the volumetric mass transfer coefficient as scale up parameter for CHO cell cultures for monoclonal antibodies production (Doctoral dissertation, Universidad Nacional de Colombia). View at Publisher | View at Google Scholar | View at Indexing
  • Lima, T. M., Souza, M. O., & Castilho, L. R. (2019). Purification of flavivirus VLPs by a two-step chomatographic process. Vaccine, 37(47), 7061-7069. View at Publisher | View at Google Scholar | View at Indexing
  • Rogers, R. S., Nightlinger, N. S., Livingston, B., Campbell, P., Bailey, R., & Balland, A. (2015, September). Development of a quantitative mass spectrometry multi-attribute method for characterization, quality control testing and disposition of biologics. In MAbs (Vol. 7, No. 5, pp. 881-890). Taylor & Francis. View at Publisher | View at Google Scholar | View at Indexing
  • Lobanova, N. V., Voronina, E. V., Nurbakov, A. A., Klishin, A. A., & Seregin, Y. A. (2018). Adaptation of Monoclonal Antibody-Producing Cell Line to Stirred-Tank Bioreactor Conditions. Biotechnology in Russia, (6), 80-94. View at Publisher | View at Google Scholar | View at Indexing
  • Lattermann, C., & Büchs, J. (2015). Microscale and miniscale fermentation and screening. Current opinion in biotechnology, 35, 1-6. View at Publisher | View at Google Scholar | View at Indexing
  • Wang, P. Z. S. W. T., Chen, B. L. S. Z. C., Song, Y. Y. Z., Pauline, M. R. W. C. Y., Rudd, M., Zhao, S., ... & Yu, C. (2016). Challenges of glycosylation analysis and control: an integrated approach to producing optimal and consistent therapeutic drugs. View at Publisher | View at Google Scholar | View at Indexing
  • Wewetzer, S. J., Kunze, M., Ladner, T., Luchterhand, B., Roth, S., Rahmen, N., ... & Büchs, J. (2015). Parallel use of shake flask and microtiter plate online measuring devices (RAMOS and BioLector) reduces the number of experiments in laboratory-scale stirred tank bioreactors. Journal of biological engineering, 9(1), 1-19. View at Publisher | View at Google Scholar | View at Indexing
  • Azadi, A., Golchini, A., Delazar, S., Abarghooi Kahaki, F., Dehnavi, S. M., Payandeh, Z., & Eyvazi, S. (2021). Recent Advances on Immune Targeted Therapy of Colorectal Cancer Using bi-Specific Antibodies and Therapeutic Vaccines. Biological Procedures Online, 23(1), 1-13. View at Publisher | View at Google Scholar | View at Indexing
  • Mühlmann, M., Forsten, E., Noack, S., & Büchs, J. (2017). Optimizing recombinant protein expression via automated induction profiling in microtiter plates at different temperatures. Microbial cell factories, 16(1), 1-12. View at Publisher | View at Google Scholar | View at Indexing
  • Sutarlie, L., Siak?Wie Ow, D., Kong Ng, S., Yang, Y., & Su, X. (2021). Gold Nanoparticle?based “Mix and Measure” Fluorimetric Assays to Quantify Antibody Titer. Chemistry–An Asian Journal, 16(20), 3188-3193. View at Publisher | View at Google Scholar | View at Indexing
  • Pollard, D., & Kistler, C. (2017). Disposable bioreactors. In Current Developments in Biotechnology and Bioengineering (pp. 353-379). Elsevier. View at Publisher | View at Google Scholar | View at Indexing
  • Boskovic, M. (2017). Construction of vectors for simultaneous expression of heavy and light chain immunoglobulin G in the HEK293 Freestyle cell line (Doctoral dissertation, University of Zagreb. Faculty of Science. Department of Biology). View at Publisher | View at Google Scholar | View at Indexing
  • Ravindran, S., Singh, P., Nene, S., Rale, V., Mhetras, N., & Vaidya, A. (2019). Microbioreactors and Perfusion Bioreactors for Microbial and Mammalian Cell Culture. Biotechnology and Bioengineering, 91. View at Publisher | View at Google Scholar | View at Indexing
  • Ravindran, S., Singh, P., Nene, S., Rale, V., Mhetras, N., & Vaidya, A. (2019). Microbioreactors and Perfusion Bioreactors for Microbial and Mammalian Cell Culture. Biotechnology and Bioengineering, 91. View at Publisher | View at Google Scholar | View at Indexing
  • Singh, N., & Herzer, S. (2017). Downstream processing technologies/capturing and final purification. New bioprocessing strategies: development and manufacturing of recombinant antibodies and proteins, 115-178. View at Publisher | View at Google Scholar | View at Indexing
  • Brühlmann, D., Jordan, M., Hemberger, J., Sauer, M., Stettler, M., & Broly, H. (2015). Tailoring recombinant protein quality by rational media design. Biotechnology progress , 31 (3), 615-629. View at Publisher | View at Google Scholar | View at Indexing
  • Weiss, CH, Merkel, C., & Zimmer, A. (2021). Impact of iron raw materials and their impurities on CHO metabolism and recombinant protein product quality. Biotechnology Progress , e3148. View at Publisher | View at Google Scholar | View at Indexing
  • CONTINI, S. (2017). Improvement of the clone selection strategy: multi-step DoE for the optimization of media and feed for mAbs production. View at Publisher | View at Google Scholar | View at Indexing
  • Nienow, A. W. (2015). Mass transfer and mixing across the scales in animal cell culture. In Animal Cell Culture (pp. 137-167). Springer, Cham. View at Publisher | View at Google Scholar | View at Indexing

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Google Scholar citation report
Citations : 1649

Pharmaceutical Bioprocessing received 1649 citations as per Google Scholar report


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