4A3-LNSC8
Version 1.45caab91 · 2026-09-13
| CAS No. | Not available |
| Chemical Name | 4A3-LNSC8 |
| Synonyms | 4A3LNSC8;4A3 LNSC8 |
| SMILES | CCCCCCCCSCC(C)C(=O)OCCNC(=S)NCCOC(=O)CCN(CCCN(C)CCCN(CCC(=O)OCCNC(=S)NCCOC(=O)C(C)CSCCCCCCCC)CCC(=O)OCCNC(=S)NCCOC(=O)C(C)CSCCCCCCCC)CCC(=O)OCCNC(=S)NCCOC(=O)C(C)CSCCCCCCCC |
| Formula | C87H163O16N11S8 |
| M.Wt | 1,875.80 |
| Purity | ELSD-HPLC>95% |
| Storage | Original product: up to 1 year under the storage conditions stated on the vial, kept tightly sealed. Stock solutions: aliquots at -20°C, generally up to one month. |
| Shipping condition | Ships from Shanghai. Pure lipid is stable during ice-pack transport. |
| Publication | Not available |
4A3-LNSC8 is a strategically designed thiourea-functionalized ionizable lipid that serves as the foundational core for a novel anion-coordination delivery platform. Its structure features a central 4A3 amine headgroup symmetrically extended with four hydrophobic tails, each incorporating a biodegradable ester linkage and a key thiourea-bridged linker. The inclusion of the thiourea group is the pivotal innovation, as it provides specific hydrogen-bonding sites capable of interacting with various halide anions (F⁻, Cl⁻, I⁻). When formulated into lipid nanoparticles (LNPs) without anion coordination, 4A3-LNSC8 itself exhibits a characteristic liver tropism, efficiently delivering mRNA to hepatocytes following systemic administration, with a measured surface pKa of approximately 5.54. However, its primary significance lies in its role as a versatile precursor. The strong anion-binding capability of its thiourea linkers allows for predictable modulation of the LNP's properties. Upon binding with anions like Cl⁻, the resulting complex (e.g., Cl-4A3-LNSC8) undergoes a significant pKa shift, which reprograms the LNP's in vivo fate, redirecting mRNA delivery from the liver to secondary lymphoid organs such as the spleen and lymph nodes. Thus, 4A3-LNSC8 is not merely an efficient ionizable lipid but a programmable scaffold that enables precise control over organ-targeting specificity through simple anion coordination, offering a powerful rational design strategy for advanced mRNA therapeutics.
Specifications shown are product-page values, not batch test results.
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