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Escape from Flatland: Increasing Saturation as an Approach to Improving Clinical Success

机译:逃离平地:增加饱和度是提高临床成功率的一种方法

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The medicinal chemistry community has become increasingly aware of the value of tracking calculated physical properties such as molecular weight, topological polar surface area, rotatable bonds, and hydrogen bond donors and acceptors. We hypothesized that the shift to high-throughput synthetic practices over the past decade may be another factor that may predispose molecules to fail by steering discovery efforts toward achiral, aromatic compounds. We have proposed two simple and interpretable measures of the complexity of molecules prepared as potential drug candidates. The first is carbon bond saturation as defined by fraction sp(3) (Fsp(3)) where Fsp(3) = (number of sp(3) hybridized carbons/total carbon count). The second is simply whether a chiral carbon exists in the molecule. We demonstrate that both complexity (as measured by Fsp(3)) and the presence of chiral centers correlate with success its compounds transition from discovery, through clinical testing, to drugs. In an attempt to explain these observations, we further demonstrate that saturation correlates with solubility, an experimental physical property important to success in the drug discovery setting.
机译:药物化学界已经越来越意识到跟踪计算的物理性质(例如分子量,拓扑极性表面积,可旋转键以及氢键供体和受体)的价值。我们假设在过去十年中向高通量合成方法的转变可能是另一个可能导致分子失败的因素,这可能是通过将发现努力转向非手性,芳香族化合物而导致的。我们提出了两种简单且可解释的措施来衡量准备作为潜在候选药物的分子的复杂性。第一个是碳分数饱和度,由分数sp(3)(Fsp(3))定义,其中Fsp(3)=(sp(3)杂化碳数/总碳数)。第二个就是分子中是否存在手性碳。我们证明复杂性(由Fsp(3)衡量)和手性中心的存在与其成功的化合物从发现到通过临床测试过渡到药物有关。为了解释这些观察结果,我们进一步证明饱和度与溶解度相关,溶解度是药物开发成功与否的重要实验物理性质。

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