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Updated: Mar 9, 2026

Registered Bioimaging of Nanomaterials for Diagnostic and Therapeutic Monitoring
Published on: December 9, 2010
Shielding Therapeutic Drug Carriers from the Mononuclear Phagocyte System: A Review
Nandhakumar Sathyamoorthy1, Magharla Dasaratha Dhanaraju1
1GIET School of Pharmacy, Rajahmundry Andhra Pradesh, India.
Abstract:
The mononuclear phagocyte system (MPS) defends the body against the invasion of microorganisms by phagocytosis. In the presence of opsonins, the invading matter is readily recognized by phagocytes because of the interaction between receptors on the phagocytic cell surfaces and the modified conformation of opsonins. The particulate carriers, which are otherwise capable of optimizing drug delivery, are subjected to opsonization and phagocytosis by the MPS immediately following intravenous administration. These drug carriers should remain in the bloodstream in order to spatially locate the drug to the target site and temporally control the drug's release from there on; however, they are devastated by opsonization by serum proteins. Therefore, to restrict opsonization, which is critical for recognition of particulate carriers by the MPS, stealth devices have been developed by engineering the carriers' surface characteristics. Physicochemical properties that influence protein immunogenicity include particle size, surface charge, and surface hydrophobicity. Steric stabilization using polyethylene glycol (PEG) and polyethylene oxide (PEO) chains attached to the particle surface is principally effective in preventing the adsorption of serum opsonins. This article reviews the literature on the MPS and its development and functions, as well as approaches for designing long-circulating carrier particles. It also comprehensively reviews parameters affecting the steric characteristics of drug carriers, such as particle size, shape, surface charge, and surface affinity, including PEGylation of carriers.
Insights
The mononuclear phagocyte system (MPS) clears drug carriers from the bloodstream. Stealth technologies, like PEGylation, prevent opsonization, enabling longer circulation and targeted drug delivery.
Area of Science:
- Immunology
- Biomaterials Science
- Pharmacology
Background:
- The mononuclear phagocyte system (MPS) is crucial for host defense via phagocytosis.
- Opsonins facilitate recognition and phagocytosis of foreign particles by the MPS.
- Particulate drug carriers are rapidly cleared from circulation due to opsonization by serum proteins.
Purpose of the Study:
- To review the development and function of the MPS.
- To explore strategies for designing long-circulating drug carrier particles.
- To analyze parameters influencing carrier interaction with the MPS.
Main Methods:
- Literature review of MPS function and drug delivery systems.
- Analysis of physicochemical properties affecting opsonization (size, charge, hydrophobicity).
- Examination of steric stabilization techniques, particularly PEGylation and PEOylation.
Main Results:
- Opsonization by serum proteins leads to rapid clearance of particulate carriers by the MPS.
- Surface modification of carriers is critical to evade MPS recognition.
- Steric stabilization using polyethylene glycol (PEG) or polyethylene oxide (PEO) chains effectively prevents opsonin adsorption.
- Particle size, shape, surface charge, and affinity influence carrier immunogenicity and circulation time.
Conclusions:
- Engineering carrier surface characteristics is essential to overcome MPS-mediated clearance.
- Stealth technologies, such as PEGylation, significantly enhance drug carrier circulation time.
- Optimizing carrier properties can lead to improved drug targeting and controlled release.

