AI Article Synopsis

  • A wide variety of calcium phosphates (CaPs) have been developed, focusing on their potential as biomaterials through purity, blending, or doping.
  • Current standards for cytocompatibility testing exist, but more advanced in vitro testing is needed to fully understand how these biomaterials behave when implanted.
  • The review discusses modern molecular techniques that help evaluate the angiogenic potential, osteogenic capability, and how CaPs affect oxidative stress and inflammation, aiming to improve the development of effective bioceramic-based therapies.

Article Abstract

Recently, a large spectrum of biomaterials emerged, with emphasis on various pure, blended, or doped calcium phosphates (CaPs). Although basic cytocompatibility testing protocols are referred by International Organization for Standardization (ISO) 10993 (parts 1-22), rigorous in vitro testing using cutting-edge technologies should be carried out in order to fully understand the behavior of various biomaterials (whether in bulk or low-dimensional object form) and to better gauge their outcome when implanted. In this review, current molecular techniques are assessed for the in-depth characterization of angiogenic potential, osteogenic capability, and the modulation of oxidative stress and inflammation properties of CaPs and their cation- and/or anion-substituted derivatives. Using such techniques, mechanisms of action of these compounds can be deciphered, highlighting the signaling pathway activation, cross-talk, and modulation by microRNA expression, which in turn can safely pave the road toward a better filtering of the truly functional, application-ready innovative therapeutic bioceramic-based solutions.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC6888321PMC
http://dx.doi.org/10.3390/ma12223704DOI Listing

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