The APC tumour suppressor gene is the most commonly mutated gene in colorectal cancer (CRC). Loss of Apc in intestinal stem cells (ISCs) drives aberrant Wnt signalling and adenoma formation in mice 1 . We previously showed that a reduction in WNT-ligand secretion increases the ability of Apc-mutant ISCs to colonise a crypt (fixation) and accelerate tumourigenesis 2 . Here, we investigate key mechanistic processes whereby Apc-mutant cells gain a clonal advantage over wild-type counterparts to achieve fixation. We find that Apc-mutant cells are enriched for transcripts encoding several secreted Wnt antagonists, with Notum being the most highly expressed. Indeed, conditioned medium from Apc-mutant cells suppresses the growth of wild-type organoids in a Notum-dependent manner. Furthermore, Notum-secreting mutant clones actively inhibit the proliferation of surrounding wild-type crypt cells and drive their differentiation, thereby outcompeting them from the niche. Importantly, genetic or pharmacological inhibition of Notum is sufficient to abrogate the expansion of Apcmutant cells and their ability to form intestinal adenomas. Taken together, we demonstrate Notum as a key mediator during the early stages of mutation fixation, which can be targeted to restore wild-type cell competition and thus, offer novel preventative strategies for high-risk patients. MainThe colonic epithelium displays one of the highest mutation rates of all tissues 3,4 , with lossof-function mutations in the APC tumour suppressor considered a key early event in colorectal cancer (CRC) initiation 5 . For a mutation to be maintained within a crypt, it needs to become "fixed", by mutant cells outcompeting wild-type intestinal stem cells (ISC) from the crypt 6,7 .Previous studies revealed that Apc loss (or Kras activation) confer a clonal advantage to ISCs 7,8, increasing their probability of fixation/winning within the crypt and, in the case of Apc mutation, driving adenoma formation. Even though APC-deficient clones have an increased probability of "winning", they can still be stochastically eliminated from the ISC pool i.e. lose.This suggests uncovering the molecular mechanisms by which APC-deficient cells outcompete wild-type cells could lead to novel chemo-preventative approaches.APC is a negative regulator of Wnt signalling that functions as an integral part of the destruction complex, which directs the phosphorylation and degradation of β-catenin 9 . Since Apc-mutant tumours exhibit constitutive Wnt-pathway activation, we first sought to identify genes differentially upregulated in Apc-mutant cells relative to the normal intestinal epithelium.For this, we performed transcriptomic analysis of tumours that develop in VillinCre ER ;Apc fl/+ (hereafter VilCre ER ;Apc fl/+ ) mice following the sporadic loss of the remaining copy of Apc 10 , akin to human CRC 11 . As expected, Wnt-target genes were highly upregulated in these Apcmutant tumours (Extended Data Fig. 1a). The most highly upregulated gene was Notum (Fig. 1a), which encodes a secreted WNT...
Chemiosmotic energy coupling through oxidative phosphorylation (OXPHOS) is crucial to life, requiring coordinated enzymes whose membrane organization and dynamics are poorly understood. We quantitatively explore localization, stoichiometry, and dynamics of key OXPHOS complexes, functionally fluorescent protein-tagged, in Escherichia coli using low-angle fluorescence and superresolution microscopy, applying single-molecule analysis and novel nanoscale co-localization measurements. Mobile 100-200nm membrane domains containing tens to hundreds of complexes are indicated. Central to our results is that domains of different functional OXPHOS complexes do not co-localize, but ubiquinone diffusion in the membrane is rapid and long-range, consistent with a mobile carrier shuttling electrons between islands of different complexes. Our results categorically demonstrate that electron transport and proton circuitry in this model bacterium are spatially delocalized over the cell membrane, in stark contrast to mitochondrial bioenergetic supercomplexes. Different organisms use radically different strategies for OXPHOS membrane organization, likely depending on the stability of their environment.
ortho-Quinone methides (o-QMs) are emerging as highly useful intermediates, the inherent reactivity of which can be used in linchpin reactions for the construction of complex natural products. This review encompasses the major contributions in this field, exemplifying the major strategies and reactivity modes which can be applied.
Parasitic nematodes infect hundreds of millions of people and farmed livestock. Further, plant parasitic nematodes result in major crop damage. The pipeline of therapeutic compounds is limited and parasite resistance to the existing anthelmintic compounds is a global threat. We have developed an INVertebrate Automated Phenotyping Platform (INVAPP) for high-throughput, plate-based chemical screening, and an algorithm (Paragon) which allows screening for compounds that have an effect on motility and development of parasitic worms. We have validated its utility by determining the efficacy of a panel of known anthelmintics against model and parasitic nematodes: Caenorhabditis elegans, Haemonchus contortus, Teladorsagia circumcincta, and Trichuris muris. We then applied the system to screen the Pathogen Box chemical library in a blinded fashion and identified compounds already known to have anthelmintic or anti-parasitic activity, including tolfenpyrad, auranofin, and mebendazole; and 14 compounds previously undescribed as anthelmintics, including benzoxaborole and isoxazole chemotypes. This system offers an effective, high-throughput system for the discovery of novel anthelmintics.
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