Recent Review on Biological Barriers and Host–Material Interfaces in Precision Drug Delivery: Advancement in Biomaterial Engineering for Better Treatment Therapies

Author:

Deshmukh Rohitas1ORCID,Sethi Pranshul2ORCID,Singh Bhupendra34ORCID,Shiekmydeen Jailani5ORCID,Salave Sagar6ORCID,Patel Ravish J.7ORCID,Ali Nemat8ORCID,Rashid Summya9,Elossaily Gehan M.10,Kumar Arun11ORCID

Affiliation:

1. Institute of Pharmaceutical Research, GLA University, Mathura 281406, India

2. Department of Pharmacology, College of Pharmacy, Shri Venkateshwara University, Gajraula 244236, India

3. School of Pharmacy, Graphic Era Hill University, Dehradun 248002, India

4. Department of Pharmacy, S.N. Medical College, Agra 282002, India

5. Formulation R&D, Alpha Pharma, KAEC, Rabigh 23994, Saudi Arabia

6. National Institute of Pharmaceutical Education and Research (NIPER), Ahmedabad 382355, India

7. Ramanbhai Patel College of Pharmacy, Charotar University of Science and Technology, Changa, Anand 388421, India

8. Department of Pharmacology and Toxicology, College of Pharmacy, King Saud University, P.O. Box 2457, Riyadh 11451, Saudi Arabia

9. Department of Pharmacology & Toxicology, College of Pharmacy, Prince Sattam Bin Abdulaziz University, P.O. Box 173, Al-Kharj 11942, Saudi Arabia

10. Department of Basic Medical Sciences, College of Medicine, AlMaarefa University, P.O. Box 71666, Riyadh 11597, Saudi Arabia

11. School of Pharmacy, Sharda University, Greater Noida 201310, India

Abstract

Preclinical and clinical studies have demonstrated that precision therapy has a broad variety of treatment applications, making it an interesting research topic with exciting potential in numerous sectors. However, major obstacles, such as inefficient and unsafe delivery systems and severe side effects, have impeded the widespread use of precision medicine. The purpose of drug delivery systems (DDSs) is to regulate the time and place of drug release and action. They aid in enhancing the equilibrium between medicinal efficacy on target and hazardous side effects off target. One promising approach is biomaterial-assisted biotherapy, which takes advantage of biomaterials’ special capabilities, such as high biocompatibility and bioactive characteristics. When administered via different routes, drug molecules deal with biological barriers; DDSs help them overcome these hurdles. With their adaptable features and ample packing capacity, biomaterial-based delivery systems allow for the targeted, localised, and prolonged release of medications. Additionally, they are being investigated more and more for the purpose of controlling the interface between the host tissue and implanted biomedical materials. This review discusses innovative nanoparticle designs for precision and non-personalised applications to improve precision therapies. We prioritised nanoparticle design trends that address heterogeneous delivery barriers, because we believe intelligent nanoparticle design can improve patient outcomes by enabling precision designs and improving general delivery efficacy. We additionally reviewed the most recent literature on biomaterials used in biotherapy and vaccine development, covering drug delivery, stem cell therapy, gene therapy, and other similar fields; we have also addressed the difficulties and future potential of biomaterial-assisted biotherapies.

Funder

Prince Sattam bin Abdulaziz University

Publisher

MDPI AG

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