Ortuno Macias Luis E, Jiménez-Ángeles Felipe, Marmorstein Jason G, Wang Yiming, Crane Stephen A, K T Surabh, Sun Pan, Sapkota Bikash, Hummingbird Eshe, Jung Woojin, Qiao Baofu, Lee Daeyeon, Dmochowski Ivan J, Messinger Robert J, Schlossman Mark L, de la Fuente-Nunez Cesar, Radhakrishnan Ravi, Petersson E James, Olvera de la Cruz Monica, Bu Wei, Bera Mrinal, Lin Binhua, Tu Raymond S, Stebe Kathleen J, Maldarelli Charles
Department of Chemical Engineering, The City College of New York, New York, NY 10031.
Department of Materials Science and Engineering, Northwestern University, Evanston, IL 60208.
Proc Natl Acad Sci U S A. 2024 Dec 24;121(52):e2411763121. doi: 10.1073/pnas.2411763121. Epub 2024 Dec 19.
Rare earth elements (REEs) are critical materials to modern technologies. They are obtained by selective separation from mining feedstocks consisting of mixtures of their trivalent cation. We are developing an all-aqueous, bioinspired, interfacial separation using peptides as amphiphilic molecular extractants. Lanthanide binding tags (LBTs) are amphiphilic peptide sequences based on the EF-hand metal binding loops of calcium-binding proteins which complex selectively REEs. We study LBTs optimized for coordination to Tb using luminescence spectroscopy, surface tensiometry, X-ray reflectivity, and X-ray fluorescence near total reflection, and find that these LBTs capture Tb in bulk and adsorb the complex to the interface. Molecular dynamics show that the binding pocket remains intact upon adsorption. We find that, if the net negative charge on the peptide results in a negatively charged complex, excess cations are recruited to the interface by nonselective Coulombic interactions that compromise selective REE capture. If, however, the net negative charge on the peptide is -3, resulting in a neutral complex, a 1:1 surface ratio of cation to peptide is achieved. Surface adsorption of the neutral peptide complexes from an equimolar mixture of Tb and La demonstrates a switchable platform dictated by bulk and interfacial effects. The adsorption layer becomes enriched in the favored Tb when the bulk peptide is saturated, but selective to La for undersaturation due to a higher surface activity of the La complex.
稀土元素(REEs)是现代技术的关键材料。它们通过从由其三价阳离子混合物组成的采矿原料中进行选择性分离而获得。我们正在开发一种全水相、受生物启发的界面分离方法,使用肽作为两亲性分子萃取剂。镧系元素结合标签(LBTs)是基于钙结合蛋白的EF-手型金属结合环的两亲性肽序列,可选择性地络合稀土元素。我们使用发光光谱、表面张力测定、X射线反射率和近全反射X射线荧光研究了针对与铽配位优化的LBTs,发现这些LBTs在本体中捕获铽并将络合物吸附到界面上。分子动力学表明,吸附后结合口袋保持完整。我们发现,如果肽上的净负电荷导致形成带负电的络合物,过量的阳离子会通过非选择性库仑相互作用被吸引到界面,这会损害稀土元素的选择性捕获。然而,如果肽上的净负电荷为-3,导致形成中性络合物,则阳离子与肽的表面比例为1:1。从铽和镧的等摩尔混合物中对中性肽络合物进行表面吸附,展示了一个由本体和界面效应决定的可切换平台。当本体肽饱和时,吸附层会富集更受青睐的铽,但由于镧络合物具有更高的表面活性,在不饱和时对镧具有选择性。