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Biology subjects

Khong, C.

Publications and source records attributed to Khong, C..

2 recordsLinked to original sources

Music-Inspired Acoustic-Piezoelectric Stimulation Accelerates Extracellular Vesicle Production and Programs Therapeutic Function

Macrophage small extracellular vesicles (sEVs) carry phenotype-linked cargo and bioactivity for immunomodulation and regeneration, but therapeutic translation is limited by low secretion and poor control of function. We introduce a music-activated piezoelectric nanofiber substrate (PES) that converted audible sound into programmable electrical stimulation to enhance sEV biogenesis while tuning macrophage polarization. Adjusting acoustic parameters increased sEV yield, while musically inspired "assemblies" biased macrophage phenotypes: dissonant, low-frequency stimuli promoted M1-like inflammation, whereas consonant, higher-frequency stimuli favored M2-like, regenerative states. These shifts produced distinct sEV cargo and bioactivities. We rationally designed customized music stimulus that maximized both vesicle production and M2 bias, yielding sEVs exhibited regeneration potentials. This work establishes a programmable acoustic-piezoelectric strategy to scale macrophage sEV production while tailoring their therapeutic potency.

bioengineering↗

M1 Macrophage-Derived Small Extracellular Vesicles as Synergistic Nanotherapeutics: Harnessing Intrinsic Anticancer Activity and Drug Delivery Capacity

Small extracellular vesicles (sEVs) have emerged as next-generation multifunctional nanotherapeutics due to their parental-cell traits and role in intercellular communication. Among them, immune cell-derived sEVs are uniquely positioned to couple innate immunomodulatory activities with therapeutic payload delivery, making them highly attractive for cancer therapy. In particular, M1 macrophage-derived sEVs (M1-sEVs) preserve the tumor-suppressive functions of their parent cells, including tumor microenvironment (TME) reprogramming, immune activation, and inhibition of cancer progression. However, the mechanisms by which these activities are coordinated within the TME, and whether they act independently or synergistically, remain poorly understood. Clarifying these mechanisms is crucial for harnessing their intrinsic bioactivity in combination with their natural capacity as drug delivery nanocarriers to optimize therapeutic efficacy. Here, we demonstrate that M1-sEVs exhibit intrinsic stability and circulation longevity via do not eat me ligands, as well as tumor-homing ability revealed by proteomic profiling, enabling efficient uptake and deep infiltration in breast cancer models. Functionally, M1-sEVs deliver antiproliferative microRNAs that suppress tumor metabolism, growth, and progression by inhibiting self-renewal, adhesion, migration, motility, and invasion. Importantly, by integrating this endogenous bioactivity with exogenous doxorubicin loading, we achieved synergistic efficacy: a 3-fold reduction in IC50 in vitro (0.46 M vs. 1.45 M for free drug) and 70.18% tumor growth inhibition in vivo. These findings highlight M1-sEVs as dual-action nanotherapeutics that combine innate immune-regulatory and tumor-inhibitory functions with efficient drug delivery, advancing their development as powerful platforms for cancer therapy.

bioengineering↗