Author name: Kristen Hartman

iPSC derived choroidal endothelial cell delivery using laminin-based hydrogels for the treatment of AMD

Pandala N, Han I, Meyering E, Stone EM, Mullins RF, Tucker BA (2024) iPSC derived choroidal endothelial cell delivery using laminin-based hydrogels for the treatment of AMD. ARVO Annual Meeting 65(7):1542. Objective: To demonstrate an interventional therapy for age-related macular degeneration (AMD) using a rat model. Summary: In this study, induced pluripotent stem cells (iPSCs) […]

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Striatal parvalbumin interneurons are activated in a mouse model of cerebellar dystonia

Matsuda T, Morigaki R, Hayasawa H, Koyama H, Oda T, Miyake K, Takagi Y (2024) Striatal parvalbumin interneurons are activated in a mouse model of cerebellar dystonia. Dis Model Mech 17(5):dmm050338. doi: 10.1242/dmm.050338 PMID: 38616770 Objective: To examine the influence of cerebellar abnormalities on the basal ganglia circuitry to investigate dystonia pathophysiology. Summary: Dystonia is

Striatal parvalbumin interneurons are activated in a mouse model of cerebellar dystonia Read More »

Brain areas interconnected to ventral pathway circuits are independently able to induce enhancement in object recognition memory and cause reversal in object recognition memory deficit

Masmudi-Martín M, Navarro-Lobato I, López-Aranda MF, Quiros-Ortega ME, Carretero-Rey M, Garcia-Garrido MF, López Téllez JF, Jiménez-Recuerda I, Muñoz de Leon López CA, Khan ZU (2024) Brain areas interconnected to ventral pathway circuits are independently able to induce enhancement in object recognition memory and cause reversal in object recognition memory deficit. CNS Neurosci Ther 30(4):e14727. doi:

Brain areas interconnected to ventral pathway circuits are independently able to induce enhancement in object recognition memory and cause reversal in object recognition memory deficit Read More »

Brain areas interconnected to ventral pathway circuits are independently able to induce enhancement in object recognition memory and cause reversal in object recognition memory deficit

Masmudi-Martín M, Navarro-Lobato I, López-Aranda MF, Quiros-Ortega ME, Carretero-Rey M, Garcia-Garrido MF, López Téllez JF, Jiménez-Recuerda I, Muñoz de Leon López CA, Khan ZU (2024) Brain areas interconnected to ventral pathway circuits are independently able to induce enhancement in object recognition memory and cause reversal in object recognition memory deficit. CNS Neurosci Ther 30(4):e14727. doi:

Brain areas interconnected to ventral pathway circuits are independently able to induce enhancement in object recognition memory and cause reversal in object recognition memory deficit Read More »

Cetuximab-toxin conjugate and npe6 with light enhanced cytotoxic effects in head and neck squamous cell carcinoma in vitro

Komatsu N, Kosai A, Kuroda M, Hamakubo T, Abe T (2024) Cetuximab-toxin conjugate and npe6 with light enhanced cytotoxic effects in head and neck squamous cell carcinoma in vitro. Biomedicines 12(5):973. doi: 10.3390/biomedicines12050973 PMID: 38790935 Objective: Combine the use of antibody-directed saporin and a photosensitizer to exert directed and improved cytotoxicity towards carcinoma cells as

Cetuximab-toxin conjugate and npe6 with light enhanced cytotoxic effects in head and neck squamous cell carcinoma in vitro Read More »

Cetuximab-toxin conjugate and npe6 with light enhanced cytotoxic effects in head and neck squamous cell carcinoma in vitro

Komatsu N, Kosai A, Kuroda M, Hamakubo T, Abe T (2024) Cetuximab-toxin conjugate and npe6 with light enhanced cytotoxic effects in head and neck squamous cell carcinoma in vitro. Biomedicines 12(5):973. doi: 10.3390/biomedicines12050973 PMID: 38790935 Objective: Combine the use of antibody-directed saporin and a photosensitizer to exert directed and improved cytotoxicity towards carcinoma cells as

Cetuximab-toxin conjugate and npe6 with light enhanced cytotoxic effects in head and neck squamous cell carcinoma in vitro Read More »

A pupillary contrast response in mice and humans: Neural mechanisms and visual functions

Fitzpatrick MJ, Krizan J, Hsiang JC, Shen N, Kerschensteiner D (2024) A pupillary contrast response in mice and humans: Neural mechanisms and visual functions. Neuron doi: 10.1016/j.neuron.2024.04.012 PMID: 38697114 Objective: To show that temporal contrast drives pupil constriction through a cell-type-specific retinal circuit in mice and humans. Summary: The pupillary contrast response enhances high spatial

A pupillary contrast response in mice and humans: Neural mechanisms and visual functions Read More »

A new Opn4cre recombinase mouse line to target intrinsically photosensitive retinal ganglion cells (ipRGCs)

Dyer B, Yu SO, Lane Brown R, Lang RA, D’Souza SP (2024) A new Opn4cre recombinase mouse line to target intrinsically photosensitive retinal ganglion cells (ipRGCs). bioRxiv doi: 10.1101/2024.04.16.589750 Objective: To generate a new Opn4cre knock-in allele [Opn4cre(DSO)], in which cre is placed immediately downstream of the Opn4 start codon. Summary: The Opn4cre(DSO) mouse line

A new Opn4cre recombinase mouse line to target intrinsically photosensitive retinal ganglion cells (ipRGCs) Read More »

Novel loading protocol combines highly efficient encapsulation of exogenous therapeutic toxin with preservation of extracellular vesicles properties, uptake and cargo activity

Zuppone S, Zarovni N, Noguchi K, Loria F, Morasso C, Lõhmus A, Nakase I, Vago R (2024) Novel loading protocol combines highly efficient encapsulation of exogenous therapeutic toxin with preservation of extracellular vesicles properties, uptake and cargo activity. Discov Nano 19(1):76. doi: 10.1186/s11671-024-04022-8 PMID: 38691254 Objective: Extracellular vesicles (EVs) have been investigated as carriers of

Novel loading protocol combines highly efficient encapsulation of exogenous therapeutic toxin with preservation of extracellular vesicles properties, uptake and cargo activity Read More »

A new Opn4cre recombinase mouse line to target intrinsically photosensitive retinal ganglion cells (ipRGCs)

Dyer B, Yu SO, Lane Brown R, Lang RA, D’Souza SP (2024) A new Opn4cre recombinase mouse line to target intrinsically photosensitive retinal ganglion cells (ipRGCs). bioRxiv doi: 10.1101/2024.04.16.589750 Objective: To generate a new Opn4cre knock-in allele [Opn4cre(DSO)], in which cre is placed immediately downstream of the Opn4 start codon. Summary: The Opn4cre(DSO) mouse line

A new Opn4cre recombinase mouse line to target intrinsically photosensitive retinal ganglion cells (ipRGCs) Read More »

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