Nanoparticles for Targeted Drug Delivery in Heart Failure
Jimmy Zhi En Heng, Zhi Ning Lee, Kian Keong Poh, Dinesh Kumar SrinivasanHeart failure remains a major cause of global morbidity and mortality despite advances in guideline-directed medical therapy. Nanoparticle-based approaches have gained attention as strategies to enhance therapeutic delivery; however, their clinical relevance depends on addressing true pharmacological barriers rather than repackaging existing agents. In this review, we present a conceptual framework to define when nanomedicine provides meaningful therapeutic value in heart failure. We argue that nanotechnology should not be viewed as a replacement for guideline-directed medical therapy, but as an enabling platform for the targeted delivery of potent therapies limited by pharmacokinetic and biodistribution constraints. We summarize the principal nanoparticle platforms used in cardiovascular applications, including lipid-based and polymeric systems, and contextualize their use across key pathophysiological domains in heart failure: TGF-β (transforming growth factor-beta)–mediated fibrosis, IL-1β (interleukin-1 beta) and TNF-α (tumor necrosis factor-alpha)–driven inflammation, reactive oxygen species–mediated injury, regenerative strategies, and gene- and mRNA-based therapies. We propose 3 criteria for translational relevance: (1) a targetable myocardial microenvironment, (2) a therapeutic agent limited by conventional delivery, and (3) a formulation that confers a demonstrable clinical advantage. Although these conditions are met in selected preclinical models, clinical translation remains limited. The field is therefore shifting from an emphasis on delivery feasibility to therapeutic necessity. Nanomedicine is best positioned as a precision adjunct to heart failure therapy—enabling the right therapy to reach the right myocardium at the right time.