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Madren, J. A.

Publications and source records attributed to Madren, J. A..

2 recordsLinked to original sources

TDP-43 pathology links innate and adaptive immunity in amyotrophic lateral sclerosis

Amyotrophic lateral sclerosis is the most common fatal motor neuron disease. Approximately 90% of ALS patients exhibit pathology of the master RNA regulator, Transactive Response DNA Binding protein (TDP-43). Despite the prevalence TDP-43 pathology in ALS motor neurons, recent findings suggest immune dysfunction is a determinant of disease progression in patients. Whether TDP-43 pathology elicits disease-modifying immune responses in ALS remains underexplored. In this study, we demonstrate that TDP-43 pathology is internalized by antigen presenting cells, causes vesicle rupture, and leads to innate and adaptive immune cell activation. Using a multiplex imaging platform, we observed interactions between innate and adaptive immune cells near TDP-43 pathological lesions in ALS brain. We used a mass cytometry-based whole-blood stimulation assay to provide evidence that ALS patient peripheral immune cells exhibit responses to TDP-43 aggregates. Taken together, this study provides a novel link between TDP-43 pathology and ALS immune dysfunction, and further highlights the translational and diagnostic implications of monitoring and manipulating the ALS immune response.

cell biology↗

A Standardized Protocol for Sample Preparation for Scanning Electron Microscopy (SEM) to Visualize Extrachromosomal DNA (ecDNA)

Extrachromosomal DNA (ecDNA) are large ([~]kilo to megabase) acentric, atelomeric, circular DNAs that are established cytogenetic markers for malignancy, hard-to-treat tumors and drug resistance. Often referred to as double minute chromosomes, ecDNA have been studied since the 1960s, primarily through molecular biology techniques, such as cytogenetics and fluorescence microscopy. More recently, next generation sequencing technologies present novel opportunities for identifying ecDNA. However, none of these approaches adequately address the architecture, size and composition of ecDNA within single cells. Developing an approach to systematically visualize ecDNA, confirm their circular architecture and determine their ultrastructure and composition is an urgent, unmet need. This work presents a protocol for visualizing ecDNA at high resolution using scanning electron microscopy (SEM). To this end, we have optimized an end-to-end procedure that involves preparing, processing and visualizing metaphase spread samples. This protocol was tested on five human cancer cell lines (COLO320DM, NCIH716, NCIH2170, SKGT2, SNU16), four of which express ecDNA in various amounts and one amplifies DNA via a homogeneous staining region (HSR). This work presents a standardized approach to preparing samples and visualizing ecDNA using SEM. SignificanceExtrachromosomal DNA (ecDNA) are proposed to have unique molecular traits, which include acentric, atelomeric and circular DNA. Standardized, high resolution microscopy approaches are in high demand to better understand structure-function relationships of ecDNA.

molecular biology↗