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Biology subjects

Peterson, N. A.

Publications and source records attributed to Peterson, N. A..

3 recordsLinked to original sources

A pooled CRISPR screen reveals genes critical for erythroblast enucleation

Terminal erythroid differentiation involves dramatic cellular remodeling that culminates in the expulsion of the nucleus, a process known as enucleation. While enucleation is conserved across mammals and is crucial for the generation of fully functional erythrocytes, the mechanisms governing this process have remained largely unknown, in part because the absence of genetic material in mature, enucleated red blood cells hinders genetic experimentation. Here, we performed a pooled, forward-genetic CRISPR-Cas9 screen in enucleated red blood cells derived from primary human hematopoietic stem cells to identify genes required for enucleation. We found that Chloride Intracellular Channel 3 (CLIC3) and Vesicle-associated membrane protein 8 (VAMP8) are both necessary for terminal erythroid differentiation, yet likely act through different mechanisms. Knockdown of CLIC3 led to a delay in erythroblast differentiation, culminating in impaired enucleation. We found that the knockdown cells had increased p53 and p21 and exhibited cell cycle alterations, suggesting CLIC3 plays a crucial role in coordinating cell cycle progression during erythropoiesis. In comparison, VAMP8-depleted cells initially appear to undergo accelerated differentiation but then display a specific defect in enucleation. Transcriptional analysis of the VAMP8-knockdown cells suggested dysregulation of pathways for vesicle trafficking and actin binding, and imaging of late-stage erythroblasts revealed impaired nuclear polarization and disorganized actin. This work provides a new approach for functional genomics in enucleated cells and reveals novel factors important for terminal erythroid differentiation and enucleation. Key pointsO_LIA CROPseq-based CRISPR-Cas9 screen enables functional genomics in enucleated primary human red blood cells. C_LIO_LIChloride Intracellular Channel 3 (CLIC3) and Vesicle Associated Membrane Protein 8 (VAMP8) were identified as critical for terminal erythroid differentiation and enucleation, likely acting through two distinct mechanisms. C_LI

cell biology↗

Hydrogels for Local and Sustained Delivery of Bacteriophages to Treat Multidrug-Resistant Wound Infections

Lytic bacteriophages, viruses that lyse (kill) bacteria, hold great promise for treating infections, including wound infections caused by antimicrobial-resistant Pseudomonas aeruginosa. However, dosing and delivery strategies for phage therapy remain underdeveloped. In a mouse wound infection model, we investigated the impact of administration route, dose, and frequency on the efficacy of phage therapy. We find that topical but not systemic delivery is effective in this model. In vitro and in vivo data supported the use of high doses of phage. Repeated dosing achieves the highest eradication rates in vivo. Building on these insights, we developed "HydroPhage", a hyaluronan-based hydrogel system that uses dynamic covalent crosslinking to deliver high-titre phages over one week, a substantial improvement over existing burst-release systems. We conclude that hydrogel-based sustained phage delivery offers a practical, efficacious, and well-tolerated option for topical phage application.

bioengineering↗

The base media formulation impacts the efficiency of ex-vivo erythropoiesis of primary human hematopoietic stem cells

During the COVID-19 pandemic, there was a disruption in the supply of the widely used erythroid differentiation media product, Iscoves Modified Dulbeccos Medium, manufactured by Biochrom AG. IMDM is a critical component of ex vivo erythropoiesis protocols used to generate genetically modified red blood cells for the study of malaria host factors. Therefore, we set out to identify the best alternative IMDM product for efficient erythroid differentiation of hematopoietic stem cells into enucleated red blood cells for use in our research. We tested other IMDM products, including I2911 (from Millipore Sigma), P04-20450 (from Pan Biotech) and EP-CM-L0216 (from ElabScience Technologies) which are all marketed specifically as replacements for the Biochrom AG product. We found that while FG0465, I2911, and P04-20450 were all sufficient for ex-vivo erythropoiesis, FG0465 IMDM was superior to other products tested in supporting maximal erythroid cell proliferation and enucleation.

cell biology↗