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Withrow, A.

Publications and source records attributed to Withrow, A..

2 recordsLinked to original sources

In vitro and in vivo analysis of microvesicle-mediated metastasis using a bright, red-shifted bioluminescent reporter protein of extracellular vesicles

Cancer cells produce heterogeneous extracellular vesicles (EVs) as mediators of intercellular communication. Our study focused on a novel method to image EV subtypes and their biodistribution in vivo. Regardless of injection routes, we established that reporter EVs isolated from murine mammary carcinoma cells expressing PalmReNL, which utilizes bioluminescence resonance energy transfer (BRET), localized to the lungs. This new EV reporter allowed highly sensitive EV tracking in vitro and in vivo and enabled us to begin studies to understand the commonalities and functional differences of the EV subtypes. We demonstrated the early appearance of metastatic foci in the lungs of mammary tumor-bearing mice following multiple injections of the microvesicle (MV)-enriched fraction derived from mammary carcinoma cells. In addition, the results we present here show that tumor cell-derived MVs act on distant tissues through upregulating LC3 expression within the lung.

cancer biology

The Induction of Pyrenoid Synthesis by Hyperoxia and its Implications for the Natural Diversity of Photosynthetic Responses in Chlamydomonas

In algae, it is well established that the pyrenoid, a component of the carbon-concentrating mechanism (CCM), is essential for efficient photosynthesis at low CO2. However, the signal that triggers the formation of the pyrenoid has remained elusive. Here, we show that, in Chlamydomonas reinhardtii, the pyrenoid is strongly induced by hyperoxia, even at high CO2 or bicarbonate levels. These results suggest that the pyrenoid can be induced by a common product of photosynthesis specific to low CO2 or hyperoxia. Consistent with this view, the photorespiratory by-product, H2O2, induced the pyrenoid, suggesting that it acts as a signal. Finally, we show evidence for linkages between genetic variations in hyperoxia tolerance, H2O2 signaling, and pyrenoid morphologies.

plant biology