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Biology subjects

Hanayama, R.

Publications and source records attributed to Hanayama, R..

2 recordsLinked to original sources

The Rubicon-WIPI axis regulates exosome biogenesis during aging

Cells release intraluminal vesicles (ILVs) in multivesicular bodies as exosomes to communicate with other cells. Although recent studies suggest an intimate link between exosome biogenesis and autophagy, the detailed mechanism is not fully understood. Here we employed comprehensive RNAi screening for autophagy-related factors and discovered that Rubicon, a negative regulator of autophagy, is essential for exosome release. Rubicon recruits WIPI2d to endosomes to promote exosome biogenesis. Interactome analysis of WIPI2d identified the ESCRT components that are required for ILV formation. Notably, we found that Rubicon is required for an age-dependent increase of exosome release in mice. In addition, small RNA sequencing of serum exosomes revealed that Rubicon determines the fate of exosomal microRNAs associated with cellular senescence and longevity pathways. Taken together, our current results suggest that the Rubicon-WIPI axis functions as a key regulator of exosome biogenesis and is responsible for the age-dependent changes in exosome quantity and quality.

cell biology↗

Surface-engineered extracellular vesicles to modulate antigen-specific T cell expansion for cancer immunotherapy

Extracellular vesicles (EVs), including exosomes, are emerging as novel mediators of cell-cell communications, involved in various processes such as immune activation and immunosuppression. Despite the recent development of several EVs-based cancer immunotherapies, their clinical efficacy remained limited. Here, using fusion with tetraspanin as one of the EV engineering techniques, we created antigen-presenting extracellular vesicles (AP-EVs) to reproduce the functional characteristics of professional antigen-presenting cells (APCs). AP-EVs were also equipped with surface-bound IL-2, a feature not inherent to APCs, which facilitated selective delivery of IL-2 to antigen-specific CD8+ T cells. AP-EVs were engineered to express a peptide-major histocompatibility class I (pMHCI) complex, a costimulatory CD80 molecule, and IL-2, allowing the simultaneous presentation of multiple immune modulators to antigen-specific CD8+ T cells. This promoted the clonal expansion and differentiation of antigen-specific cytotoxic T lymphocytes, leading to potent anticancer immune responses. Combination therapy with AP-EVs and anti-PD-1 demonstrated enhanced anticancer immunity against established tumors compared with anti-PD-1 monotherapy. Our engineered EVs represent a novel effective strategy for cancer immunotherapy.

bioengineering↗