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Efficacy of SDS For Protein Extraction from Broiler Muscles and Mammalian Liver Tissue

Authors
  • Syeda Qandiel Zahra

    School of Zoology, Minhaj University Lahore, 54770, Pakistan
    Author
  • Sidra Latif

    Department of Zoology, University of Okara, Okara, 56300, Pakistan
    Author
  • Hira Nazir

    School of Zoology, Minhaj University Lahore, 54770, Pakistan
    Author
  • Zunaira Izhar Shah

    Department of Zoology, University of Okara, Okara, 56300, Pakistan
    Author
  • Azka Zafar

    Department of Zoology, University of Okara, Okara, 56300, Pakistan
    Author
  • Ayesha Majid

    Department of Zoology, University of Okara, Okara, 56300, Pakistan
    Author
  • Adil Farooq

    School of Zoology, Minhaj University Lahore, 54770, Pakistan
    Author
  • Asif Mehmood Qureshi

    School of Zoology, Minhaj University Lahore, 54770, Pakistan
    Author
Keywords:
Broilers, Crude Protein, Mammalian Liver, Protein extraction, SDS
Abstract

Background: The present study purports to check and validate the potential of sodium dodecyl sulfate (SDS) alone being a suitable and cost-effective lysis buffer for maximum and efficient protein extraction from various muscle tissues of broiler chicken and mammalian liver.

Materials and Methods: Three different muscle tissues (I; chest, II; wing and III; leg) were extracted from randomly selected commercial broilers (n=4) while mice (n=3) were dissected for the extraction of liver tissue samples. 1:1 ratio (w/v) of SDS; 10, 1.0 & 1.5% was used for muscles and liver tissues, respectively for its best time optimization for protein extraction. After incubation, respective tissues were homogenized followed by centrifugation. The supernatant was then processed for crude protein (CP) extraction by Bromocresol Green (BCG) method.

Results: SDS (10%) achieved a maximum yield of CP after 1 hour of incubation. When checked the co-dependence of SDS-reagent on muscle-tissue type and time of incubation, tissue I (chest) was found to give maximum CP contents after 1 hour of incubation, tissue II (wing) extracted more CP after 3 hours while tissue III (leg) rendered equal amounts of CP after 1, 2 and 3 hours of incubation, respectively. From the mammalian liver tissue maximum yield of CP (6.9 g/dl), and albumin (ALB) (1.6 g/dl) was obtained with 1.5% of SDS. While the CP and albumin (Alb) content was not detected after homogenization with 1.0% SDS. Significance was checked at (P< 0.05). 

Conclusion: It is concluded from the above findings that 10% SDS is the best lysis buffer concentration to extract crude protein from all the studied broiler muscle tissues while from mice liver samples we found 1.5% SDS lysis reagent seems good than 1.0%. Furthermore, this simple and cheapest procedure and ease of preparation this reagent may be suitable for extraction of important tissue protein fractions.

Author Biographies
  1. Syeda Qandiel Zahra, School of Zoology, Minhaj University Lahore, 54770, Pakistan

    Minhaj University Lahore

  2. Sidra Latif, Department of Zoology, University of Okara, Okara, 56300, Pakistan

    University of Okara

  3. Hira Nazir, School of Zoology, Minhaj University Lahore, 54770, Pakistan

    Minhaj University Lahore

  4. Zunaira Izhar Shah, Department of Zoology, University of Okara, Okara, 56300, Pakistan

    University of Okara

  5. Azka Zafar, Department of Zoology, University of Okara, Okara, 56300, Pakistan

    University of Okara

  6. Ayesha Majid, Department of Zoology, University of Okara, Okara, 56300, Pakistan

    University of Okara

  7. Adil Farooq, School of Zoology, Minhaj University Lahore, 54770, Pakistan

    Minhaj University Lahore

  8. Asif Mehmood Qureshi, School of Zoology, Minhaj University Lahore, 54770, Pakistan

     Minhaj University Lahore,

References

Abbasi, M. H., Bukhari, S. S. I., Usman, M., Kanwal, S., & Sheikh, N. (2016). An attempt to find a rapid and cost-effective method of protein isolation from hepatic tissue of mammals. Science International, 28(3), 2633-2635.

Dhabaria, A., Cifani, P., Reed, C., Steen, H., & Kentsis, A. (2015). A High-Efficiency Cellular Extraction System for Biological Proteomics. Journal of Proteome Research, 14(8), 3403–3408. https://doi.org/10.1021/acs.jproteome.5b00547

Garavito, R. M., & Ferguson-Miller, S. (2001). Detergents as tools in membrane biochemistry. The Journal of Biological Chemistry, 276(35), 32403–32406. https://doi.org/10.1074/ jbc.R100031200

Hong, K. J., Lee, C. H., & Kim, S. W. (2004). Aspergillus oryzae GB-107 fermentation improves nutritional quality of food soybeans and feed soybean meals. Journal of Medicinal Food, 7(4), 430–435. https://doi.org/10.1089/jmf.2004.7.430

Le Maire, M., Champeil, P., & Moller, J. V. (2000). Interaction of membrane proteins and lipids with solubilizing detergents. Biochimica et Biophysica Acta- Biomembranes, 1508(1-2), 86–111. https://doi.org/10.1016/s0304-4157(00)00010-1

Mahalanabis, M., Al-Muayad, H., Kulinski, M. D., Altman, D., & Klapperich, C. M. (2009). Cell lysis and DNA extraction of gram-positive and gram-negative bacteria from whole blood in a disposable microfluidic chip. Lab on a Chip, 9(19), 2811–2817. https://doi.org/10.1039/b905065p

Matsuo, Y., Asakawa, K., Toda, T., & Katayama, S. (2006). A rapid method for protein extraction from fission yeast. Bioscience, Biotechnology, and Biochemistry, 70(8), 1992–1994. https://doi.org/10.1271/bbb.60087

Privé G. G. (2007). Detergents for the stabilization and crystallization of membrane proteins. Methods (San Diego, Calif.), 41(4), 388–397. https://doi.org/10.1016/j.ymeth.2007. 01.007

Tan, S. C., & Yiap, B. C. (2009). DNA, RNA, and protein extraction: the past and the present. Journal of Biomedicine & Biotechnology, 2009, 574398. https://doi.org/10.1155/2009/ 574398

Zhang, X., Li, L., Mayne, J., Ning, Z., Stintzi, A., & Figeys, D. (2018). Assessing the impact of protein extraction methods for human gut metaproteomics. Journal of Proteomics, 180, 120–127. https://doi.org/10.1016/j.jprot.2017.07.001

Zhang, X., Ning, Z., Mayne, J., Moore, J. I., Li, J., Butcher, J., Deeke, S. A., Chen, R., Chiang, C. K., Wen, M., Mack, D., Stintzi, A., & Figeys, D. (2016). MetaPro-IQ: a universal metaproteomic approach to studying human and mouse gut microbiota. Microbiome, 4(1), 31. https://doi.org/10.1186/ s40168-016-0176-z

Zuidhof, M. J., Schneider, B. L., Carney, V. L., Korver, D. R., & Robinson, F. E. (2014). Growth, efficiency, and yield of commercial broilers from 1957, 1978, and 2005. Poultry Science, 93(12), 2970–2982. https://doi.org/10.3382/ps.2014-04291

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2022-06-24
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Efficacy of SDS For Protein Extraction from Broiler Muscles and Mammalian Liver Tissue. (2022). Albus Scientia, 2022(1), 1-4. https://doi.org/10.56512/

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