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Majewski, L.

Publications and source records attributed to Majewski, L..

2 recordsLinked to original sources

Kv2.1-Kv6.4 subunits deficiency impairs inhibitory signaling and visual circuit dynamics in zebrafish

Voltage-gated potassium channels (Kv) play a crucial role in maintaining the cells resting potential. Mutations in the Kv2.1 voltage-gated potassium channel are associated with developmental epileptic encephalopathy. Previous analysis of the loss-of-function zebrafish mutants kcnb1sq301 and kcng4bwaw304, which affect genes that encode Kv2.1 subunits (the subunit Kcnb1 and the modulatory subunit Kcng4b), has shown that they play an antagonistic role in the development of hollow organs, such as the brain and ear. In this study, we investigated the behavioral effects of these mutations. Under normal light conditions, both mutants exhibited reduced activity at 5 days post-fertilization. However, exposure to a low concentration of 5 mM of the chemoconvulsant pentylenetetrazole increased their locomotor activity and induced seizures. Quantitative RT-PCR (qRT-PCR) analysis of the mutants revealed an increase in the transcript levels of c-fos and gad2, and a decrease in a transcript level of gabra1. This suggests that mutations cause a disruption to inhibitory neurotransmission. Local field potential recordings from the optic tectum of the mutants under baseline conditions showed an increase in spontaneous electrical activity. The kcnb1 mutant is photosensitive and experiences freezing episodes under high-intensity light. Together, these findings suggest that defects in Kv2.1 subunits impact both locomotor behavior and light-evoked responses.

developmental biology↗

Tmbim5 loss causes muscle atrophy in zebrafish without exacerbating mcu or slc8b1 knockout phenotypes

Mitochondrial calcium homeostasis involves coordinated uptake via the mitochondrial calcium uniporter (MCU) and efflux through sodium-dependent NCLX (encoded by SLC8B1). Mild Mcu knockout phenotypes suggest additional transport mechanisms. We investigated TMBIM5, a proposed bidirectional mitochondrial calcium/proton transporter, by generating zebrafish lacking tmbim5, slc8b1, plus tmbim5/mcu and tmbim5/slc8b1 double knockouts. Tmbim5-deficient fish exhibited growth impairment, muscle atrophy, and increased brain cell death. tmbim5/mcu double knockouts showed no additive effects, arguing against Tmbim5 functioning as an independent calcium uptake pathway. However, tmbim5/slc8b1 double knockouts showed disrupted mitochondrial calcium handling with reduced uptake and efflux. Remarkably, brain phenotypes were rescued while muscle dysfunction was exacerbated in double mutants, corresponding to restored mitochondrial membrane potential in Tmbim5-deficient brain tissue and exacerbated decreased calcium levels in double knockout muscle. We also found broad downregulation of mitochondrial calcium transport proteins and decreased mitochondrial DNA content in double knockout brain tissue, indicating reduced mitochondrial mass and a potential beneficial glycolytic shift in energy metabolism. These findings demonstrate that TMBIM5 functions as a calcium efflux pathway cooperating with NCLX in a tissue-specific manner.

cell biology↗