Exploring the Interplay between Polyphenols and Lysyl Oxidase Enzymes for Maintaining Extracellular Matrix Homeostasis

被引:15
作者
Anazco, Carolina [1 ]
Riedelsberger, Janin [2 ]
Vega-Montoto, Lorenzo [3 ]
Rojas, Armando [4 ]
机构
[1] Univ San Sebastian, Escuela Nutr & Dietet, Fac Ciencias Cuidado Salud, Lab Bioquim Nutr, Gen Lagos 1190, Valdivia 5110773, Chile
[2] Univ Talca, Fac Ingn, CBSC, 1 Poniente 1141, Talca 3462227, Chile
[3] Idaho Natl Lab INL, Chem & Radiat Measurement, 1705 N Yellowstone Hwy, Idaho Falls, ID 83415 USA
[4] Catholic Univ Maule, Med Fac, Biomed Res Labs, Talca 3480112, Chile
关键词
collagen cross-linking; extracellular matrix; fibrosis; glycation; lysyl oxidase; polyphenols; COLLAGEN CROSS-LINKING; ADVANCED GLYCATION; I COLLAGEN; NONENZYMATIC GLYCATION; EXPRESSION; SKIN; LYSINE; COPPER; AGE; COMPLICATIONS;
D O I
10.3390/ijms241310985
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Collagen, the most abundant structural protein found in mammals, plays a vital role as a constituent of the extracellular matrix (ECM) that surrounds cells. Collagen fibrils are strengthened through the formation of covalent cross-links, which involve complex enzymatic and non-enzymatic reactions. Lysyl oxidase (LOX) is responsible for catalyzing the oxidative deamination of lysine and hydroxylysine residues, resulting in the production of aldehydes, allysine, and hydroxyallysine. These intermediates undergo spontaneous condensation reactions, leading to the formation of immature cross-links, which are the initial step in the development of mature covalent cross-links. Additionally, non-enzymatic glycation contributes to the formation of abnormal cross-linking in collagen fibrils. During glycation, specific lysine and arginine residues in collagen are modified by reducing sugars, leading to the creation of Advanced Glycation End-products (AGEs). These AGEs have been associated with changes in the mechanical properties of collagen fibers. Interestingly, various studies have reported that plant polyphenols possess amine oxidase-like activity and can act as potent inhibitors of protein glycation. This review article focuses on compiling the literature describing polyphenols with amine oxidase-like activity and antiglycation properties. Specifically, we explore the molecular mechanisms by which specific flavonoids impact or protect the normal collagen cross-linking process. Furthermore, we discuss how these dual activities can be harnessed to generate properly cross-linked collagen molecules, thereby promoting the stabilization of highly organized collagen fibrils.
引用
收藏
页数:20
相关论文
共 135 条
[51]   Glycation of type I collagen selectively targets the same helical domain lysine sites as lysyl oxidase-mediated cross-linking [J].
Hudson, David M. ;
Archer, Marilyn ;
King, Karen B. ;
Eyre, David R. .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2018, 293 (40) :15620-15627
[52]   Anti-glycation, Carbonyl Trapping and Anti-inflammatory Activities of Chrysin Derivatives [J].
Hwang, Seung Hwan ;
Kim, Hyun Yong ;
Zuo, Guanglei ;
Wang, Zhiqiang ;
Lee, Jae-Yong ;
Lim, Soon Sung .
MOLECULES, 2018, 23 (07)
[53]  
Imran M., 2017, J. Environ. Agric. Sci, V10, P40
[54]   In Vitro Antioxidant and Anti-Glycation Activity of Resveratrol and Its Novel Triester with Trolox [J].
Intagliata, Sebastiano ;
Spadaro, Angelo ;
Lorenti, Miriam ;
Panico, Annamaria ;
Siciliano, Edy A. ;
Barbagallo, Sabrina ;
Macaluso, Benito ;
Kamble, Shyam H. ;
Modica, Maria N. ;
Montenegro, Lucia .
ANTIOXIDANTS, 2021, 10 (01) :1-12
[55]   Highly accurate protein structure prediction with AlphaFold [J].
Jumper, John ;
Evans, Richard ;
Pritzel, Alexander ;
Green, Tim ;
Figurnov, Michael ;
Ronneberger, Olaf ;
Tunyasuvunakool, Kathryn ;
Bates, Russ ;
Zidek, Augustin ;
Potapenko, Anna ;
Bridgland, Alex ;
Meyer, Clemens ;
Kohl, Simon A. A. ;
Ballard, Andrew J. ;
Cowie, Andrew ;
Romera-Paredes, Bernardino ;
Nikolov, Stanislav ;
Jain, Rishub ;
Adler, Jonas ;
Back, Trevor ;
Petersen, Stig ;
Reiman, David ;
Clancy, Ellen ;
Zielinski, Michal ;
Steinegger, Martin ;
Pacholska, Michalina ;
Berghammer, Tamas ;
Bodenstein, Sebastian ;
Silver, David ;
Vinyals, Oriol ;
Senior, Andrew W. ;
Kavukcuoglu, Koray ;
Kohli, Pushmeet ;
Hassabis, Demis .
NATURE, 2021, 596 (7873) :583-+
[56]   Lysyl oxidase: Properties, specificity, and biological roles inside and outside of the cell [J].
Kagan, HM ;
Li, WD .
JOURNAL OF CELLULAR BIOCHEMISTRY, 2003, 88 (04) :660-672
[57]   Fibromodulin Interacts with Collagen Cross-linking Sites and Activates Lysyl Oxidase [J].
Kalamajski, Sebastian ;
Bihan, Dominique ;
Bonna, Arkadiusz ;
Rubin, Kristofer ;
Farndale, Richard W. .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2016, 291 (15) :7951-7960
[58]   Increased C-telopeptide Cross-linking of Tendon Type I Collagen in Fibromodulin-deficient Mice [J].
Kalamajski, Sebastian ;
Liu, Cuiping ;
Tillgren, Viveka ;
Rubin, Kristofer ;
Oldberg, Ake ;
Rai, Jyoti ;
Weis, MaryAnn ;
Eyre, David R. .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2014, 289 (27) :18873-18879
[59]   A guide to the composition and functions of the extracellular matrix [J].
Karamanos, Nikos K. ;
Theocharis, Achilleas D. ;
Piperigkou, Zoi ;
Manou, Dimitra ;
Passi, Alberto ;
Skandalis, Spyros S. ;
Vynios, Demitrios H. ;
Orian-Rousseau, Veronique ;
Ricard-Blum, Sylvie ;
Schmelzer, Christian E. H. ;
Duca, Laurent ;
Durbee, Madeleine ;
Afratis, Nikolaos A. ;
Troeberg, Linda ;
Franchi, Marco ;
Masola, Valentina ;
Onisto, Maurizio .
FEBS JOURNAL, 2021, 288 (24) :6850-6912
[60]   Polyphenols and Glycemic Control [J].
Kim, Yoona ;
Keogh, Jennifer B. ;
Clifton, Peter M. .
NUTRIENTS, 2016, 8 (01)