Sarma Suryakamal, Thakur Neha, Varshney Nidhi, Jha Hem Chandra, Sarma Tridib K
Department of Chemistry, Indian Institute of Technology Indore, Indore, India.
Developmental Bioengineering, TechMed Centre, University of Twente. Drienerlolaan 5, Enschede, The Netherlands.
Commun Chem. 2024 Nov 12;7(1):261. doi: 10.1038/s42004-024-01353-6.
The integration of biomolecules into supramolecular nanostructures forms the basis of the natural world. Naturally occurring liquid-liquid phase separation resulting in biomolecular condensates has inspired the formation of biomolecule-based smart materials with multi-dimensional applications. A non-covalent bio-condensation between biomass DNA and guanosine monophosphate (GMP) has been described, mimicking chromatin folding and creating a unique "all-nucleic" DNA-GMP condensates. These condensates initiate the formation of G-quadruplex-based superstructures, assembling into super-helical fibres driven by synergistic hydrogen bonding and stacking, which have been thoroughly investigated. This simple, one-step method for the bio-condensation of biomass DNA leads to an "all-nucleic" hydrogel with higher-order self-assembly and excellent mechanical properties. While most of the reported DNA based biomaterials, including hydrogels, require precisely sequenced and molecularly architectured DNA building blocks, we have developed a simple, universal, and facile bio-condensation method that utilizes biomass DNA acquired from any bio-resource to fabricate DNA hydrogels. The hydrogel efficiently encapsulates and sustains the release of both hydrophilic and hydrophobic drugs, demonstrating its competency as a drug carrier. We believe this energy-efficient and low-cost method represents a new technique for using biomass DNA as building blocks for the next generation of soft materials.
生物分子整合到超分子纳米结构中构成了自然界的基础。自然发生的液-液相分离产生生物分子凝聚物,这激发了具有多维应用的基于生物分子的智能材料的形成。已经描述了生物质DNA与鸟苷单磷酸(GMP)之间的非共价生物缩合,模拟染色质折叠并产生独特的“全核酸”DNA-GMP凝聚物。这些凝聚物引发基于G-四链体的超结构的形成,通过协同氢键和堆积组装成超螺旋纤维,对此已进行了深入研究。这种用于生物质DNA生物缩合的简单一步法可产生具有高阶自组装和优异机械性能的“全核酸”水凝胶。虽然大多数已报道的基于DNA的生物材料,包括水凝胶,都需要精确测序和分子构建的DNA构建块,但我们开发了一种简单、通用且便捷的生物缩合方法,该方法利用从任何生物资源中获取的生物质DNA来制造DNA水凝胶。该水凝胶能有效封装并持续释放亲水性和疏水性药物,证明了其作为药物载体的能力。我们相信这种节能且低成本的方法代表了一种利用生物质DNA作为下一代软材料构建块的新技术。