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Lamin A

Updated: 2026-07-17

Overview

Lamin A is a type V intermediate filament protein encoded by the LMNA gene and is a major component of the nuclear lamina, a mesh-like structure underlying the inner nuclear membrane. It plays critical roles in maintaining nuclear shape, mechanical stability, and organizing chromatin. Lamin A is synthesized as a precursor (prelamin A) that undergoes complex post-translational processing, including farnesylation and proteolytic cleavage, to mature into its functional form. Mutations in the LMNA gene are associated with a spectrum of human diseases collectively termed laminopathies, including Hutchinson-Gilford progeria syndrome (HGPS), Emery-Dreifuss muscular dystrophy, and dilated cardiomyopathy. Research on Lamin A has expanded into aging studies, nuclear mechanics, and potential gene therapies.

Physical and Chemical Properties

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Lamin A has a molecular weight of approximately 74 kDa in its unprocessed form (prelamin A), reducing to about 70 kDa after maturation. The protein consists of a central α-helical rod domain flanked by non-helical head and tail domains, enabling polymerization into higher-order filaments. Its solubility depends on buffer conditions, typically requiring neutral pH and moderate ionic strength for stability. Key modifications include farnesylation of the C-terminal CAAX motif (later removed during processing) and phosphorylation during cell cycle progression. Lamin A exhibits heat stability due to its coiled-coil structure but can aggregate under improper storage. Analytical techniques like SDS-PAGE, Western blotting, and immunofluorescence are standard for characterization.

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Main Applications

In biomedical research, Lamin A is studied for its role in laminopathies, particularly progeria, where aberrant splicing produces progerin, a toxic truncated form. It serves as a biomarker for nuclear abnormalities in cancer and aging studies. Recombinant Lamin A is used in vitro to investigate nuclear mechanics, chromatin interactions, and gene regulation. Therapeutic applications include antisense oligonucleotide (ASO) therapies targeting progerin and CRISPR-based gene editing for laminopathy correction. In biotechnology, Lamin A-derived peptides are explored for nuclear targeting in drug delivery systems. Its structural role also makes it a focus in tissue engineering and stem cell differentiation assays.

Safety and Storage

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Lamin A is generally safe to handle under standard biosafety level 1 (BSL-1) conditions. However, recombinant proteins should be handled with gloves to prevent degradation and contamination. Avoid inhalation of lyophilized powder; use in a fume hood if resuspending large quantities. For storage, aliquot the protein to avoid repeated freeze-thaw cycles and maintain at -20°C for short-term use or -80°C for long-term preservation. Include protease inhibitors in working solutions if stability is a concern. Dispose of waste according to institutional guidelines for biological materials.

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B2B Procurement Guide

When procuring Lamin A for research or industrial use, prioritize vendors with certified quality control (e.g., mass spectrometry validation, endotoxin testing). Specify whether full-length, truncated, or modified variants (e.g., progerin) are required. Bulk purchases may qualify for discounts; negotiate pricing for orders exceeding 1 mg. For cell culture applications, opt for endotoxin-free preparations. Consider custom services (e.g., fluorescent labeling, species-specific isoforms) if standard products are insufficient. Lead times vary; plan ahead for GMP-grade material, which may require 4-8 weeks. Always request certificates of analysis (CoA) for purity and activity assays.

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