Melanin Nanoparticles Obtained from Preformed Recombinant Melanin by Bottom-Up and Top-Down Approaches

被引:7
作者
Alcala-Alcala, Sergio [1 ]
Eduardo Casarrubias-Anacleto, Jose [1 ]
Mondragon-Guillen, Maximiliano [2 ]
Alberto Tavira-Montalvan, Carlos [2 ]
Bonilla-Hernandez, Marcos [1 ]
Lizbeth Gomez-Galicia, Diana [3 ]
Gosset, Guillermo [4 ]
Meneses-Acosta, Angelica [2 ]
机构
[1] Univ Autonoma Estado Morelos, Fac Farm, Lab Invest Tecnol Farmaceut, Cuernavaca 62209, Morelos, Mexico
[2] Univ Autonoma Estado Morelos, Fac Farm, Lab Biotecnol Farmaceut, Cuernavaca 62209, Morelos, Mexico
[3] Univ Autonoma Estado Morelos, Fac Farm, Farm Hosp, Cuernavaca 62209, Morelos, Mexico
[4] Univ Nacl Autonoma Mexico, Dept Ingn Celular & Biocatalisis, Inst Biotecnol, Cuernavaca 62209, Morelos, Mexico
关键词
melanin nanoparticles; preformed recombinant melanin; nanocrystallization; high-pressure homogenization; double emulsion-solvent evaporation; BIOMATERIALS; PIGMENT;
D O I
10.3390/polym15102381
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Melanin is an insoluble, amorphous polymer that forms planar sheets that aggregate naturally to create colloidal particles with several biological functions. Based on this, here, a preformed recombinant melanin (PRM) was utilized as the polymeric raw material to generate recombinant melanin nanoparticles (RMNPs). These nanoparticles were prepared using bottom-up (nanocrystallization-NC, and double emulsion-solvent evaporation-DE) and top-down (high-pressure homogenization-HP) manufacturing approaches. The particle size, Z-potential, identity, stability, morphology, and solid-state properties were evaluated. RMNP biocompatibility was determined in human embryogenic kidney (HEK293) and human epidermal keratinocyte (HEKn) cell lines. RMNPs prepared by NC reached a particle size of 245.9 +/- 31.5 nm and a Z-potential of -20.2 +/- 1.56 mV; 253.1 +/- 30.6 nm and -39.2 +/- 0.56 mV compared to that obtained by DE, as well as RMNPs of 302.2 +/- 69.9 nm and -38.6 +/- 2.25 mV using HP. Spherical and solid nanostructures in the bottom-up approaches were observed; however, they were an irregular shape with a wide size distribution when the HP method was applied. Infrared (IR) spectra showed no changes in the chemical structure of the melanin after the manufacturing process but did exhibit an amorphous crystal rearrangement according to calorimetric and PXRD analysis. All RMNPs presented long stability in an aqueous suspension and resistance to being sterilized by wet steam and ultraviolet (UV) radiation. Finally, cytotoxicity assays showed that RMNPs are safe up to 100 mu g/mL. These findings open new possibilities for obtaining melanin nanoparticles with potential applications in drug delivery, tissue engineering, diagnosis, and sun protection, among others.
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页数:19
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共 58 条
[1]   Marine sponge melanin: a new source of an old biopolymer [J].
Araujo, Marco ;
Xavier, Joana R. ;
Nunes, Carla D. ;
Vaz, Pedro D. ;
Humanes, Madalena .
STRUCTURAL CHEMISTRY, 2012, 23 (01) :115-122
[2]   Thermal analysis study of antihypertensive drug doxazosin mesilate [J].
Attia, Ali K. ;
Abdel-Moety, Mona M. ;
Abdel-Hamid, Samar G. .
ARABIAN JOURNAL OF CHEMISTRY, 2017, 10 :S334-S338
[3]   Effect of melanins from black yeast fungi on proliferation and differentiation of cultivated human keratinocytes and fibroblasts [J].
Blinova, MI ;
Yudintseva, NM ;
Kalmykova, NV ;
Kuzminykh, EV ;
Yurlova, NA ;
Ovchinnikova, OA ;
Potokin, IL .
CELL BIOLOGY INTERNATIONAL, 2003, 27 (02) :135-146
[4]   Surface enhanced Raman scattering (SERS) and FTIR characterization of the sepia melanin pigment used in works of art [J].
Centeno, Silvia A. ;
Shamir, Jacob .
JOURNAL OF MOLECULAR STRUCTURE, 2008, 873 (1-3) :149-159
[5]   Metabolic engineering of Escherichia coli to optimize melanin synthesis from glucose [J].
Chavez-Bejar, Maria I. ;
Balderas-Hernandez, Victor E. ;
Gutierrez-Alejandre, Aida ;
Martinez, Alfredo ;
Bolivar, Francisco ;
Gosset, Guillermo .
MICROBIAL CELL FACTORIES, 2013, 12
[6]   Nanonization strategies for poorly water-soluble drugs [J].
Chen, Huabing ;
Khemtong, Chalermchai ;
Yang, Xiangliang ;
Chang, Xueling ;
Gao, Jinming .
DRUG DISCOVERY TODAY, 2011, 16 (7-8) :354-360
[7]   A facile nanoaggregation strategy for oral delivery of hydrophobic drugs by utilizing acid-base neutralization reactions [J].
Chen, Huabing ;
Wan, Jiangling ;
Wang, Yirui ;
Mou, Dongsheng ;
Liu, Hongbin ;
Xu, Huibi ;
Yang, Xiangliang .
NANOTECHNOLOGY, 2008, 19 (37)
[8]   Advances in fabricating double-emulsion droplets and their biomedical applications [J].
Chong, DaoTong ;
Liu, XinShi ;
Ma, HuaJie ;
Huang, GuoYou ;
Han, Yu Long ;
Cui, XingYe ;
Yan, JunJie ;
Xu, Feng .
MICROFLUIDICS AND NANOFLUIDICS, 2015, 19 (05) :1071-1090
[9]  
Cordero RJB, 2020, CURR BIOL, V30, pR142, DOI 10.1016/j.cub.2019.12.042
[10]   Applications of Melanin and Melanin-Like Nanoparticles in Cancer Therapy: A Review of Recent Advances [J].
Cuzzubbo, Stefania ;
Carpentier, Antoine F. .
CANCERS, 2021, 13 (06)