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BT Lab

SKU(재고 관리 코드):BT-AP11477

MYT1L Rabbit Polyclonal Antibody

MYT1L Rabbit Polyclonal Antibody

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This gene encodes a member of the zinc finger superfamily of transcription factors. The encoded protein belongs to a novel class of cystein-cystein-histidine-cystein zinc finger proteins that function in the developing mammalian central nervous system. Forced expression of this gene in combination with the basic helix-loop-helix transcription factor NeuroD1 and the transcription factors POU class 3 homeobox 2 and achaete-scute family basic helix-loop-helix transcription factor 1 can convert fetal and postnatal human fibroblasts into induced neuronal cells| which are able to generate action potentials. Mutations in this gene have been associated with autosomal mental retardation-39 and autism spectrum disorder. Alternative splicing results in multiple variants.

The MYT1L Rabbit Polyclonal Antibody is a highly specific and reliable tool designed for the detection and analysis of MYT1L protein expression in various biological samples. This antibody has been meticulously developed using advanced immunization techniques, ensuring its exceptional sensitivity and specificity.

The MYT1L Rabbit Polyclonal Antibody exhibits a high affinity towards the MYT1L protein, enabling accurate and precise detection even at low expression levels. It has been extensively validated for use in various applications, including Western blotting, immunohistochemistry, and immunofluorescence.

This antibody offers researchers a valuable tool for investigating the role of MYT1L in various cellular processes and disease states. Its exceptional performance and reliability make it an ideal choice for both basic research and clinical applications.

The MYT1L Rabbit Polyclonal Antibody is supplied as a ready-to-use solution, ensuring convenience and ease of use. It is provided in a vial with optimal storage conditions, guaranteeing its stability and long shelf life.

Choose the MYT1L Rabbit Polyclonal Antibody for its exceptional quality, reliability, and specificity, and unlock new insights into the function and regulation of MYT1L protein.

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