The Quest for Anti-inflammatory and Anti-infective Biomaterials in Clinical Translation

被引:21
作者
Griffith, May [1 ,2 ,3 ]
Islam, Mohammad M. [1 ,2 ]
Edin, Joel [1 ,2 ]
Papapavlou, Georgia [1 ]
Buznyk, Oleksiy [4 ]
Patra, Hirak K. [1 ]
机构
[1] Linkoping Univ, Dept Clin & Expt Med IKE, Linkoping, Sweden
[2] Karolinska Inst, Swedish Med Nanosci Ctr, Dept Neurosci, Stockholm, Sweden
[3] Univ Montreal, Maisonneuve Rosemont Hosp Res Ctr, Dept Ophthalmol, Montreal, PQ, Canada
[4] NAMS Ukraine, Filatov Inst Eye Dis & Tissue Therapy, Dept Eye Burns Ophthalm Reconstruct Surg & Kerato, Odessa, Ukraine
关键词
DEXAMETHASONE INTRAVITREAL IMPLANT; FOREIGN-BODY REACTION; HERPES-SIMPLEX-VIRUS; SILVER NANOPARTICLES; ANTIBACTERIAL ACTIVITY; CARBON NANOTUBES; ANTIMICROBIAL ACTIVITY; ANTIVIRAL ACTIVITY; HYALURONIC-ACID; TISSUE;
D O I
10.3389/fbioe.2016.00071
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Biomaterials are now being used or evaluated clinically as implants to supplement the severe shortage of available human donor organs. To date, however, such implants have mainly been developed as scaffolds to promote the regeneration of failing organs due to old age or congenital malformations. In the real world, however, infection or immunological issues often compromise patients. For example, bacterial and viral infections can result in uncontrolled immunopathological damage and lead to organ failure. Hence, there is a need for biomaterials and implants that not only promote regeneration but also address issues that are specific to compromised patients, such as infection and inflammation. Different strategies are needed to address the regeneration of organs that have been damaged by infection or inflammation for successful clinical translation. Therefore, the real quest is for multifunctional biomaterials with combined properties that can combat infections, modulate inflammation, and promote regeneration at the same time. These strategies will necessitate the inclusion of methodologies for management of the cellular and signaling components elicited within the local microenvironment. In the development of such biomaterials, strategies range from the inclusion of materials that have intrinsic anti-inflammatory properties, such as the synthetic lipid polymer, 2-methacryloyloxyethyl phosphorylcholine (MPC), to silver nanoparticles that have antibacterial properties, to inclusion of nano-and micro-particles in biomaterials composites that deliver active drugs. In this present review, we present examples of both kinds of materials in each group along with their pros and cons. Thus, as a promising next generation strategy to aid or replace tissue/organ transplantation, an integrated smart programmable platform is needed for regenerative medicine applications to create and/or restore normal function at the cell and tissue levels. Therefore, now it is of utmost importance to develop integrative biomaterials based on multifunctional biopolymers and nanosystem for their practical and successful clinical translation.
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页数:9
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共 86 条
[11]   Sulfated fucans, fresh perspectives: structures, functions, and biological properties of sulfated fucans and an overview of enzymes active toward this class of polysaccharide [J].
Berteau, O ;
Mulloy, B .
GLYCOBIOLOGY, 2003, 13 (06) :29R-40R
[12]   The antibacterial effects of silver, titanium dioxide and silica dioxide nanoparticles compared to the dental disinfectant chlorhexidine on Streptococcus mutans using a suite of bioassays [J].
Besinis, Alexandros ;
De Peralta, Tracy ;
Handy, Richard D. .
NANOTOXICOLOGY, 2014, 8 (01) :1-16
[13]   Inhibition of HIV fusion with multivalent gold nanoparticles [J].
Bowman, Mary-Catherine ;
Ballard, T. Eric ;
Ackerson, Christopher J. ;
Feldheim, Daniel L. ;
Margolis, David M. ;
Melander, Christian .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2008, 130 (22) :6896-+
[14]   In Vitro Biofilm Models for Device-Related Infections [J].
Buhmann, Matthias T. ;
Stiefel, Philipp ;
Maniura-Weber, Katharina ;
Ren, Qun .
TRENDS IN BIOTECHNOLOGY, 2016, 34 (12) :945-948
[15]   Biomaterial-Associated Infection: Locating the Finish Line in the Race for the Surface [J].
Busscher, Henk J. ;
van der Mei, Henny C. ;
Subbiahdoss, Guruprakash ;
Jutte, Paul C. ;
van den Dungen, Jan J. A. M. ;
Zaat, Sebastian A. J. ;
Schultz, Marcus J. ;
Grainger, David W. .
SCIENCE TRANSLATIONAL MEDICINE, 2012, 4 (153)
[16]   Bioengineered Corneas Grafted as Alternatives to Human Donor Corneas in Three High-Risk Patients [J].
Buznyk, Oleksiy ;
Pasyechnikova, Nataliya ;
Islam, M. Mirazul ;
Iakymenko, Stanislav ;
Fagerholm, Per ;
Griffith, May .
CTS-CLINICAL AND TRANSLATIONAL SCIENCE, 2015, 8 (05) :558-562
[17]   Antibiotic-loaded biomaterials and the risks for the spread of antibiotic resistance following their prophylactic and therapeutic clinical use [J].
Campoccia, Davide ;
Montanaro, Lucio ;
Speziale, Pietro ;
Arciola, Carla Renata .
BIOMATERIALS, 2010, 31 (25) :6363-6377
[18]   Dexamethasone Intravitreal Implant in the Treatment of Persistent Uveitic Macular Edema in the Absence of Active Inflammation [J].
Cao, Jennifer H. ;
Mulvahill, Matthew ;
Zhang, Li ;
Joondeph, Brian C. ;
Dacey, Mark S. .
OPHTHALMOLOGY, 2014, 121 (10) :1871-1876
[19]   Broad-Spectrum Antibacterial Activity of Carbon Nanotubes to Human Gut Bacteria [J].
Chen, Hanqing ;
Wang, Bing ;
Gao, Di ;
Guan, Ming ;
Zheng, Lingna ;
Ouyang, Hong ;
Chai, Zhifang ;
Zhao, Yuliang ;
Feng, Weiyue .
SMALL, 2013, 9 (16) :2735-2746
[20]   Glycosystems in nanotechnology: Gold glyconanoparticles as carrier for anti-HIV prodrugs [J].
Chiodo, Fabrizio ;
Marradi, Marco ;
Calvo, Javier ;
Yuste, Eloisa ;
Penades, Soledad .
BEILSTEIN JOURNAL OF ORGANIC CHEMISTRY, 2014, 10 :1339-1346