With the ultimate goal of developing a more representative animal model of Alzheimer's disease (AD), two female amyloid-β-(Aβ) precursor protein-transgenic (APPtg) rhesus monkeys were generated by lentiviral transduction of the APP gene into rhesus oocytes, followed by in vitro fertilization and embryo transfer. The APP-transgene included the AD-associated Swedish K670N/M671L and Indiana V717F mutations (APPSWE/IND) regulated by the human polyubiquitin-C promoter. Overexpression of APP was confirmed in lymphocytes and brain tissue. Upon sacrifice at 10 years of age, one of the monkeys had developed Aβ plaques and cerebral Aβ-amyloid angiopathy in the occipital, parietal, and caudal temporal neocortices. The induction of Aβ deposition more than a decade prior to its usual emergence in the rhesus monkey supports the feasibility of creating a transgenic nonhuman primate model for mechanistic analyses and preclinical testing of treatments for Alzheimer's disease and cerebrovascular amyloidosis.
The neurodegeneration associated with Huntington disease (HD) leads to the onset of motor and cognitive impairment and their advancement with increased age in humans. In children at risk for HD, body measurement growth abnormalities include a reduction in BMI, weight, height, and head circumference. The transgenic HD NHP model was first reported in 2008, and progressive decline in cognitive behaviors and motor impairment have been reported. This study focuses on longitudinal body measurements in HD macaques from infancy through adulthood. The growth of HD macaques was assessed through head circumference, sagittal and transverse head, and crown-to-rump ('height') measurements and BMI. The animals were measured monthly from 0 to 72 mo of age and every 3 mo from 72 mo of age onward. A mixed-effect model was used to assess subject-specific effects in our nonlinear serial data. Compared with WT controls, HD macaques displayed different developmental trajectories characterized by increased BMI, head circumference, and sagittal head measurements beginning around 40 mo of age. The physiologic comparability between NHP and humans underscores the translational utility of our HD macaques to evaluate growth and developmental patterns associated with HD.
Cryopreservation is an important tool routinely used in preserving sperm for assisted reproductive technologies and for genetic preservation of unique animal models. Here we investigated the viability of fresh and frozen sperm from rhesus macaques on the basis of motility, membrane integrity, and acrosome integrity. Sperm motility was determined by visual evaluation; membrane and acrosome integrity were assessed simultaneously through triple staining with Hoechst 33342, propidium iodide, and fluorescein isothiocyanate-peanut agglutinin. We compared thawed semen that had been cryopreserved by using 2 different media with fresh semen from wildtype (WT) macaques; fresh semen from a model of Huntington disease (HD) with fresh WT semen; and fresh HD with cryopreserved-thawed HD semen. Our new freezing media (TEST EQ) preserved the acrosome better, with less net damage, than did traditional TEST (egg yolk extender containing TES and Tris) media. In addition, the percentage of membrane-damaged cells was similar in fresh HD semen (38.6%±2.9%) and WT semen (35.5%±1.9%). Membrane and acrosomal damage were not different between HD and WT sperm after cryopreservation and subsequent thawing. Furthermore, cryopreservation had similar negative effects on the motility of HD and WT sperm. These data illustrate that semen from a rhesus macaque model of HD is similarly cryotoleratant to that from WT animals.
Transgenic nonhuman primate models are an increasingly popular model for neurologic and neurodegenerative disease because their brain functions and neural anatomies closely resemble those of humans. Transgenic Huntington's disease monkeys (HD monkeys) developed clinical features similar to those seen in HD patients, making the monkeys suitable for a preclinical study of HD. However, until HD monkey colonies can be readily expanded, their use in preclinical studies will be limited. In the present study, we confirmed germline transmission of the mutant huntingtin (mHTT) transgene in both embryonic stem cells generated from three male HD monkey founders (F0) and in second-generation offspring (F1) produced via artificial insemination by using intrauterine insemination technique. A total of five offspring were produced from 15 females that were inseminated by intrauterine insemination using semen collected from the three HD founders (5 of 15, 33%). Thus far, sperm collected from the HD founder (rHD8) has led to two F1 transgenic HD monkeys with germline transmission rate at 100% (2 of 2). mHTT expression was confirmed by quantitative real-time polymerase chain reaction using skin fibroblasts from the F1 HD monkeys and induced pluripotent stem cells established from one of the F1 HD monkeys (rHD8-2). Here, we report the stable germline transmission and expression of the mHTT transgene in HD monkeys, which suggest possible expansion of HD monkey colonies for preclinical and biomedical research studies.
One of the roadblocks to developing effective therapeutics for Huntington disease (HD) is the lack of animal models that develop progressive clinical traits comparable to those seen in patients. Here we report a longitudinal study that encompasses cognitive and motor assessment, and neuroimaging of a group of transgenic HD and control monkeys from infancy to adulthood. Along with progressive cognitive and motor impairment, neuroimaging revealed a progressive reduction in striatal volume. Magnetic resonance spectroscopy at 48 months of age revealed a decrease of N-acetylaspartate (NAA), further suggesting neuronal damage/loss in the striatum. Postmortem neuropathological analyses revealed significant neuronal loss in the striatum. Our results indicate that HD monkeys share similar disease patterns with HD patients, making them potentially suitable as a preclinical HD animal model.
Cryopreservation is an important tool routinely used for preserving sperm for artificial reproductive technologies (ART), as well as genetic preservation of unique animal models. The cryopreservation process is harsh and detrimental to the fragile gametes, and damage to the sperm is not only known, but inevitable. This study presents new data in which sperm from 3 transgenic Huntington's disease (HD) monkeys (rhesus macaques) are compared with 3 wild-type (WT) rhesus sperm donors. Currently, there are no data comparing HD versus WT sperm viability and cryotolerance in humans. The goal of this study was to investigate differences between fresh and frozen semen by quantitative analysis on sperm viability based on (1) motility, (2) membrane integrity, and (3) acrosome integrity. Sperm motility was determined by visual evaluation. Membrane and acrosome integrity were assessed simultaneously by Hoechst 33342, propidium iodide (PI), and fluorescein isothiocyanate-peanut agglutinin (FITC-PNA) triple staining. Sperm viability analysis was divided into 3 groups: (1) fresh HD versus fresh WT, (2) fresh versus cryopreserved-thawed WT, (3) and fresh HD versus cryopreserved-thawed HD sperm. Interestingly, fresh HD sperm had a lower percentage of membrane-damaged cells (38.57 ± 3.15) compared with WT (49.67 ± 3.56; P < 0.03). However, after cryopreservation and subsequent thawing, HD sperm had a significantly higher percentage increase in damaged membranes than WT sperm (27.91 ± 2.93 v. 8.27 ± 8.28; P < 0.001), respectively. No significant difference in acrosome damage between groups was identified in either fresh or cryopreserved sperm populations. Motility significantly declined in both cryopreserved populations [HD: 89.7 to 43.4% (P < 0.001) and WT: 90.0 to 45.6% (P < 0.001)]. There was no significant difference between either freeze-thawed group. These data illustrate that HD sperm have a lower cryotolerance than WT sperm. Our findings suggest that the optimization of the HD sperm cryopreservation method and investigation on biochemical differences (e.g. membrane lipid composition) are necessary to improve post-thaw survival. This in turn is important for the establishment of a sperm cryobank and future derivation of a unique animal model such as HD monkey. Our study also suggests that HD monkey could be a useful model for optimizing cryopreservation method for HD patients.
BACKGROUND:A two-year longitudinal study composed of morphometric MRI measures and cognitive behavioral evaluation was performed on a transgenic Huntington's disease (HD) monkey. rHD1, a transgenic HD monkey expressing exon 1 of the human gene encoding huntingtin (HTT) with 29 CAG repeats regulated by a human polyubiquitin C promoter was used together with four age-matched wild-type control monkeys. This is the first study on a primate model of human HD based on longitudinal clinical measurements.RESULTS:Changes in striatal and hippocampal volumes in rHD1 were observed with progressive impairment in motor functions and cognitive decline, including deficits in learning stimulus-reward associations, recognition memory and spatial memory. The results demonstrate a progressive cognitive decline and morphometric changes in the striatum and hippocampus in a transgenic HD monkey.CONCLUSIONS:This is the first study on a primate model of human HD based on longitudinal clinical measurements. While this study is based a single HD monkey, an ongoing longitudinal study with additional HD monkeys will be important for the confirmation of our findings. A nonhuman primate model of HD could complement other animal models of HD to better understand the pathogenesis of HD and future development of diagnostics and therapeutics through longitudinal assessment.
Background: Huntington's Disease (HD) is a progressive neurodegenerative disorder caused by an expansion in the polyglutamine (polyQ) region of the Huntingtin (HTT) gene. The clinical features of HD are characterized by cognitive, psychological, and motor deficits. Molecular instability, a core component in neurological disease progression, can be comprehensively evaluated through longitudinal transcriptomic profiling. Development of animal models amenable to longitudinal examination enables distinct disease-associated mechanisms to be identified.Results: Here we report the first longitudinal study of transgenic monkeys with genomic integration of various lengths of the human HTT gene and a range of polyQ repeats. With this unique group of transgenic HD nonhuman primates (HD monkeys), we profiled over 47,000 transcripts from peripheral blood collected over a 2 year timespan from HD monkeys and age-matched wild-type control monkeys.Conclusions: Messenger RNAs with expression patterns which diverged with disease progression in the HD monkeys considerably facilitated our search for transcripts with diagnostic or therapeutic potential in the blood of human HD patients, opening up a new avenue for clinical investigation.