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The HTT1a protein initiates HTT aggregation in a knock-in mouse model of Huntington's disease.

The mutation that causes Huntington's disease is a CAG repeat expansion in exon 1 of the huntingtin gene (HTT) that leads to an abnormally long polyglutamine tract in the huntingtin protein (HTT). Mutant CAG repeats are unstable and increase in size in specific neurons and brain regions with age, a phenomenon that constitutes the first step in the pathogenesis of the disease. In the presence of an expanded CAG repeat, cryptic polyadenylation (polyA) sites in intron 1 of the HTT pre-mRNA can become activated leading to the polyadenylation of a prematurely terminated transcript, HTT1a. This encodes the HTT1a protein, which is known to be very aggregation-prone and highly pathogenic. Given that the longer the CAG repeat the more HTT1a is generated, could the production of HTT1a be the mechanism through which somatic CAG repeat expansion exerts its pathogenic consequences? Resolving this issue is very important for the design of therapeutic approaches to lower huntingtin levels. We have used a clustered regularly interspaced short palindromic repeats (CRISPR)-Cas9 approach to prevent the production of HTT1a in a knock-in mouse model of Huntington's disease. All potential cryptic polyA sites were deleted from Htt intron 1 in HdhQ150 mice and colonies were established that were heterozygous for the intron 1 deletion on a mutant allele (HdhQ150ΔI) and heterozygous for the deletion on a wild-type allele (WTΔI). The CAG repeat sizes in the HdhQ150 and HdhQ150ΔI colonies were well-matched at approximately 195 CAGs. As predicted, the deletion of the cryptic polyA sites from Htt intron 1 prevented the generation of the Htt1a transcript in the HdhQ150ΔI mice. However, very low levels of the HTT1a protein were detected, which resulted from a Htt readthrough product of exon 1 and exon 2, that had retained the deleted intron and terminated at a cryptic polyA site in intron 2. HdhQ150, HdhQ150ΔI, wild-type and WTΔI mice were studied until 17 months of age. Immunohistochemical and homogeneous time-resolved fluorescence analysis showed that HTT aggregation in both HdhQ150 and HdhQ150ΔI brains contained HTT1a, but the dramatic decrease in soluble HTT1a levels in HdhQ150ΔI brains delayed the appearance of aggregated HTT1a by several months. Although this delay in aggregate pathology only partially reversed transcriptional dysregulation, the biomarkers neurofilament light polypeptide (NEFL) and breast regression protein 39 (BRP39) (YKL40) remained at wild-type levels in HdhQ150ΔI mice at 17 months of age. These data demonstrate that the production of HTT1a initiates HTT aggregation and that it is important to target HTT1a in huntingtin-lowering therapeutic strategies.

Animals

Comparison of the binding characteristics of two different preparations of tetanus toxin to rat brain membranes.

Two different preparations of tetanus toxin (HTT and WTT) were iodinated, and their binding to rat brain membranes characterized. Under optimal binding conditions (25 mM Tris-acetate, pH 6.0), both preparations bound to a large number of high affinity sites, thought to be gangliosides. Binding constants were identical. However, in a physiological buffer (Krebs-Ringer, pH 7.4) binding of the two toxin preparations showed a number of differences. Under these conditions we have previously shown that HTT binding is markedly reduced, and that there are two classes of sites, a small number of heat-, sialidase- and protease-sensitive high affinity sites, and a larger number of sialidase-sensitive, heat- and protease-resistant lower affinity sites, probably gangliosides (PIERCE et al. (1986) Biochem. J. 236, 845-852). Although WTT bound to these same two sites, it displayed a higher affinity for the protease-resistant site than did HTT. WTT also bound to free or immobilized trisialoganglioside with higher affinity than HTT, consistent with the view that the protease-resistant site represents binding to ganglioside. In contrast, both toxin preparations bound to the protease-sensitive site with similar affinities. These observations may explain the four to five-fold higher levels of WTT binding to brain membranes, and the fact that a smaller percentage of total WTT binding is protease sensitive. Despite their different ganglioside-binding properties, both toxin preparations showed comparable neurotoxic activities, and appeared identical on SDS gels.

Animals

[Long-term results of high-tolerance extracorporeal methods in the light of the new high-efficiency treatments].

While the efficiency of treatment has been recently related to long-term clinical outcome, the relevance of tolerance on this subject, even on critically ill patients, has seldom been evaluated, for the limited size of single pools on high tolerance dialytic treatments (HTT) and the flux of pts. among treatments. Since 1981, on 2243 pts on files of the Dialytic Piedmont Regional Registry, 1399 treatments on acetate-hemodialysis (HD), 1153 on bicarbonate dialysis (BC) and 249 hemofiltration (HF) were compared by survival analysis (Mantel test) and yearly hospitalization rate (YH), according to age, factors of clinical high risk (HR) and presence of diabetes. BC and HF showed on HR pts. LTS comparable to HD (at 1 yr. 82, 78.3 vs 76.77%) despite the higher age, and the lower proportion of first choice (38.9%, 25% vs. 83.5%) testifying successful treatment of more critical cases. On non HR pts. HF, a less efficient treatment vs BD and AD, showed slightly reduced LTS (95.2% at 1 yr. vs. 98.1 and 97.9%). HY results higher on HF vs. BD on non HR pts. (10.4 vs. 5.3 and 2.1%) but improves on HR pts. (10.7 vs. 12.5%) and is lower than BC on diabetics (8.3 vs. 14.5%) (p less than 0.01).

Adult