Proteomic analysis of chemically transformed NIH-3T3 cells reveals novel mechanisms of action of amaranth lunasin-like peptide

被引:4
作者
Mazorra-Carrillo, Jorge L. [1 ]
De Leon-Rodriguez, Antonio [1 ]
Huerta-Ocampo, Jose A. [1 ,3 ]
Velarde-Salcedo, Aida J. [1 ,4 ]
de Mejia, Elvira Gonzalez [2 ]
de la Rosa, Ana P. Barba [1 ]
机构
[1] Inst Potosino Invest Cient & Tecnol, IPICyT, AC Camino Presa San Jose 2055,Lomas 4 Secc, San Luis Potosi 78216, SLP, Mexico
[2] Univ Illinois, Dept Food Sci & Human Nutr, Champaign, IL 61801 USA
[3] Ctr Investiga Alimentac & Desarrollo, Investigador Mex CONACYT, AC AP1735, Hermosillo, Sonora, Mexico
[4] Univ Autonoma San Luis Potosi, Fac Ciencias Quim, San Luis Potosi 78300, SLP, Mexico
关键词
Amaranth seeds; Bioactive peptides; Chemical transformation; Gel-based proteomics; B ACTIVATION; CANCER CELLS; HISTONES H3; PROTEINS; EXPRESSION; PHOSPHORYLATION; DEHYDROGENASE; PROLIFERATION; MACROPHAGES; RESISTANCE;
D O I
10.1016/j.foodres.2022.111374
中图分类号
TS2 [食品工业];
学科分类号
0832 ;
摘要
Food-derived biopeptides can interact with genes and proteins to preserve health and prevent the development of diseases. Lunasin is a soybean cancer-preventive peptide that has been well characterized; however, few studies have been carried out to characterize the function of amaranth lunasin-like peptide (AhLun). The aim of this work was to analyze the proteomic profile changes in NIH-3T3 cells when they are chemically transformed with the carcinogen 3-methylcholanthrene (3MC) in the absence or presence of AhLun. The addition of AhLun into the culture medium did not affect the cell morphology; however, as a chemopreventive agent, it significantly reduced anisokaryosis formation when cells were treated with 3MC. Changes in protein accumulation in NIH-3T3 cells were evaluated by gel-based proteomics analysis. Differentially accumulated protein spots that exhibited at least a twofold change in spot intensity (p < 0.05), when compared with control cells, were analyzed by LC-MS/ MS. Successfully identified proteins were grouped into six main categories according to their localization and function (nuclear, ribosomal, mitochondrial, metabolism, cytoskeletal, and miscellaneous). The gel-based proteomic approach for the evaluation of the chemopreventive potential of AhLun reveals novel pathways of action and provides new clues about the possible mechanisms of action of this bioactive peptide present in amaranth seeds.
引用
收藏
页数:9
相关论文
共 76 条
[61]   Uncovering the role of VDAC in the regulation of cell life and death [J].
Shoshan-Barmatz, Varda ;
Keinan, Nurit ;
Zaid, Hilal .
JOURNAL OF BIOENERGETICS AND BIOMEMBRANES, 2008, 40 (03) :183-191
[62]   Bioactive peptides in amaranth (Amaranthus hypochondriacus) seed [J].
Silva-Sanchez, C. ;
de la Rosa, A. P. Barba ;
Leon-Galvan, M. F. ;
de Lumen, B. O. ;
de Leon-Rodriguez, A. ;
de Mejia, E. Gonzalez .
JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY, 2008, 56 (04) :1233-1240
[63]   Proteomic analysis of human follicular fluid from polycystic ovary syndrome patients [J].
Sim, Young-Jin ;
Ryu, A-Reum ;
Lee, Mi-Young .
BIOTECHNOLOGY AND APPLIED BIOCHEMISTRY, 2022, 69 (01) :289-295
[64]   Recent advancement in functional properties and toxicity assessment of plant-derived bioactive peptides using bioinformatic approaches [J].
Singh, Prem Pratap ;
Gupta, Vishal ;
Prakash, Bhanu .
CRITICAL REVIEWS IN FOOD SCIENCE AND NUTRITION, 2023, 63 (20) :4503-4521
[65]   Cancer proteomics and its application to discovery of therapy response markers in human cancer [J].
Smith, Laura ;
Lind, Michael J. ;
Welham, Kevin J. ;
Cawkwell, Lynn .
CANCER, 2006, 107 (02) :232-241
[66]   Proteins involved in oxidative stress in leiomyoma tissues treated with ulipristal acetate [J].
Ura, Blendi ;
Monasta, Lorenzo ;
De Spelorzi, Yeraldin Chiquinquira Castillo ;
Arrigoni, Giorgio ;
Franchin, Cinzia ;
Biffi, Stefania ;
Aloisio, Michelangelo ;
Gaita, Bartolomea ;
Licastro, Danilo ;
Athanasakis, Emmanouil ;
Scrimin, Federica ;
Stabile, Guglielmo ;
Romano, Federico ;
Di Lorenzo, Giovanni ;
Ricci, Giuseppe .
MOLECULAR MEDICINE REPORTS, 2021, 23 (01)
[67]  
Velarde-Salcedo A. J., 2021, BIOLOGICALLY ACTIVE, P47, DOI [10.1016/B978-0-12-821389-6.00021-2, DOI 10.1016/B978-0-12-821389-6.00021-2]
[68]   Identification of proteins responsible for adriamycin resistance in breast cancer cells using proteomics analysis [J].
Wang, Zhipeng ;
Liang, Shuang ;
Lian, Xin ;
Liu, Lei ;
Zhao, Shu ;
Xuan, Qijia ;
Guo, Li ;
Liu, Hang ;
Yang, Yuguang ;
Dong, Tieying ;
Liu, Yanchen ;
Liu, Zhaoliang ;
Zhang, Qingyuan .
SCIENTIFIC REPORTS, 2015, 5
[69]   Advanced proteomic technologies for cancer biomarker discovery [J].
Wong, Sze Chuen Cesar ;
Chan, Charles Ming Lok ;
Ma, Brigette Buig Yue ;
Lam, Money Yan Yee ;
Choi, Gigi Ching Gee ;
Au, Thomas Chi Chuen ;
Chan, Andrew Sai Kit ;
Chan, Anthony Tak Cheung .
EXPERT REVIEW OF PROTEOMICS, 2009, 6 (02) :123-134
[70]   Comparative proteomic analysis of colon cancer cells in response to Oxaliplatin treatment [J].
Yao, Yi ;
Jia, Xiao-Yuan ;
Tian, Hong-Yu ;
Jiang, Yu-Xiang ;
Xu, Gen-Jun ;
Qian, Qi-Jun ;
Zhao, Fu-Kun .
BIOCHIMICA ET BIOPHYSICA ACTA-PROTEINS AND PROTEOMICS, 2009, 1794 (10) :1433-1440