Design, synthesis, and biological evaluation of 4-aminopyrimidine or 4,6-diaminopyrimidine derivatives as beta amyloid cleaving enzyme-1 inhibitors
CHEMICAL BIOLOGY & DRUG DESIGN
Authors: Xu, Xiufeng; Lue, Peng; Wang, Junjie; Xu, Fengrong; Liang, Lei; Wang, Chao; Niu, Yan; Xu, Ping
Abstract
A series of novel aminopyrimidine and diaminopyrimidine derivatives were designed and optimized to improve their potency and permeability relative to lead compound 1 (IC50 = 37.4 mu M), which was discovered in a previous virtual screening. The potency of the optimized compound, 13g (IC50 = 1.4 mu M), was 26-fold greater than that of 1 based on a fluorescence resonance energy transfer assay, and a parallel artificial membrane permeability assay suggested that it could pass through the blood-brain barrier. Additionally, several compounds containing selenium showed good potencies and deserve further investigation as anti-Alzheimer's agents.
Presynaptic failure in Alzheimer's disease
PROGRESS IN NEUROBIOLOGY
Authors: Barthet, Gael; Mulle, Christophe
Abstract
Synaptic loss is the best correlate of cognitive deficits in Alzheimer's disease (AD). Extensive experimental evidence also indicates alterations of synaptic properties at the early stages of disease progression, before synapse loss and neuronal degeneration. A majority of studies in mouse models of AD have focused on post-synaptic mechanisms, including impairment of long-term plasticity, spine structure and glutamate receptor-mediated transmission. Here we review the literature indicating that the synaptic pathology in AD includes a strong presynaptic component. We describe the evidence indicating presynaptic physiological functions of the major molecular players in AD. These include the amyloid precursor protein (APP) and the two presenilin (PS) paralogs PS1 or PS2, genetically linked to the early-onset form of AD, in addition to tau which accumulates in a pathological form in the AD brain. Three main mechanisms participating in presynaptic functions are highlighted. APP fragments bind to presynaptic receptors (e.g. nAChRs and GABA(B) receptors), presenilins control Ca2+ homeostasis and Ca2+-sensors, and tau regulates the localization of presynaptic molecules and synaptic vesicles. We then discuss how impairment of these presynaptic physiological functions can explain or forecast the hallmarks of synaptic impairment and associated dysfunction of neuronal circuits in AD. Beyond the physiological roles of the AD-related proteins, studies in AD brains also support preferential presynaptic alteration. This review features presynaptic failure as a strong component of pathological mechanisms in AD.