Pulsatile GNRH administration for treating cognitive impairment

Pulsatile GnRH administration addresses cognitive and olfactory impairments by restoring normal GnRH secretion patterns, effectively treating cognitive disorders associated with olfactory dysfunction.

JP7779739B2Active Publication Date: 2025-12-03INST NAT DE LA SANTE & DE LA RECHERCHE MEDICALE (INSERM) +2
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Patent Information

Application Number
JP2021564303
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-04-30
Filing Date
2020-04-29
Publication Date
2025-12-03
Estimated Expiration
2040-04-29

AI Technical Summary

Technical Problem

There is no satisfactory standard treatment for cognitive disorders associated with olfactory dysfunction, particularly in conditions like Down syndrome, Alzheimer's disease, and Parkinson's disease, where olfactory impairment is a common feature.

Method used

Pulsatile administration of gonadotropin-releasing hormone (GnRH) to restore normal GnRH secretion patterns, which can be achieved through transdermal delivery systems or transplantation of GnRH-producing neurons, and regulated by microRNAs such as miR-200 and miR-155 to address cognitive and olfactory impairments.

Benefits of technology

Reverses olfactory and cognitive-related deficits, reduces expression of AD-related proteins, and improves cognitive performance by restoring GnRH pulsatile secretion.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to a novel therapeutic method for treating cognitive impairment associated with olfactory dysfunction. By using a mouse model of Down's syndrome (DS-Ts65Dn mice), the inventors have demonstrated that GnRH deficiency is involved in the age-dependent acquisition of cognitive decline in DS, and that pulsatile GnRH treatment in DS can reverse the impairment associated with olfactory and cognition. The inventors have further demonstrated that GnRH deficiency is involved in the pathological pathway of cognitive decline associated with olfactory dysfunction, and therefore, pulsatile GnRH administration can be used to treat cognitive impairment associated with olfactory dysfunction. Therefore, the present invention relates to the use of GnRH for the treatment of cognitive impairment, wherein the GnRH is administered by pulsatile administration. The present invention further relates to miR-200 and / or miR-155, which are known to be involved in regulating GnRH secretion, for use in the treatment of cognitive impairment.
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Description

[Technical Field]

[0001] FIELD OF THE INVENTION

[0002] The present invention relates to a novel therapeutic method for treating cognitive disorders associated with olfactory dysfunction. In particular, the present invention relates to pulsed administration of gonadotropin-releasing hormone (GnRH) for the treatment of cognitive disorders associated with olfactory dysfunction.

[0003] Background of the Invention

[0004] An association between olfactory dysfunction and cognitive impairment has been found in several disorders. Olfactory dysfunction has been shown, for example, in Alzheimer's disease, Parkinson's disease, dementia, Down's syndrome, and non-Down's syndrome retardation (Doty, 2012), suggesting that a common pathological substrate may be involved in these diseases. However, the mechanisms involved in this olfactory impairment remain unclear.

[0005] Cognitive impairment generally includes memory impairment as well as impairment in at least one other cognitive domain, such as attention, language, visuospatial skills, or problem solving. These impairments significantly impair a patient's daily functional activities and generally require intensive health care.

[0006] To date, there is no satisfactory standard treatment for cognitive disorders.

[0007] Thus, there is a need for new therapeutic approaches for cognitive disorders.

[0008] Down syndrome (DS), also known as trisomy 21, is the most common genetic form of intellectual disability, with a worldwide prevalence of 10–14 per 10,000 births and associated with multiple age-dependent comorbidities (Antonarakis, 2017; Bayen et al., 2018). Patients with DS appear to actually experience accelerated aging physiology and conditions, often manifesting by their 40th birthday. In particular, adults with DS are at extremely high risk for developing Alzheimer's disease (AD), due in part to overexpression of the amyloid precursor protein encoded by APP as a result of the location of this gene on chromosome 21. While postmortem studies have revealed that nearly 100% of adults with DS exhibit AD neuropathological changes by the age of 40 (Editorial, 2013; Lott and Head, 2019), clinical trials have shown that, despite lifelong intellectual disability, rates of dementia are generally low in people under 40 years of age with DS. However, clinical symptoms of dementia appear rapidly after the age of 40 ( Ballard et al., 2016 ).

[0009] DS is often associated with fertility and olfactory disorders. Curiously, these features can also be found in another disorder, Kallmann syndrome (KS). KS is a genetic disorder that affects both the reproductive axis and the olfactory system. It is a form of hypogonadotropic hypogonadism caused by a failure of gonadotropin-releasing hormone (GnRH) neurons to migrate from the olfactory placode into the brain. Patients present with absence of puberty onset and fertility, as well as loss of smell.

[0010] Patients with DS have impaired fertility and accelerated aging physiology. The natural aging process results in changes in the hypothalamic-pituitary gonadal axis, initially leading to a dramatic decline in estrogen (Studd et al., 1978) and a gradual decline in testosterone in men (Deslypere et al., 1987). Both low estrogen in women (Manly et al., 2000) and low testosterone in men have been consistently associated with poor cognitive performance and an increased risk of AD (Moffat et al., 2004; Yaffe et al., 2002). The dramatic decline in gonadal steroids in women results from the loss of ovarian reserve at menopause, which induces a significant and persistent increase in the activity of hypothalamic neurons that release GnRH, a neurohormone that controls reproduction and species survival. This increase is due to the lack of estrogen's inhibitory negative feedback effect on GnRH secretion, resulting in a dramatic increase in circulating levels of gonadotropins released by the pituitary gland, including luteinizing hormone (LH) (Studd et al., 1978; Yen and Tsai, 1971). In aging men, decreases in testosterone pulse frequency and serum levels are associated with changes in hypothalamic-pituitary function, which may be due to a gradual decline in GnRH secretion with age (Deslypere et al., 1987). Similarly, postmenopausal aging women experience a significant decrease in pulsatile activity in the hypothalamic portion of the reproductive axis with age (Hall et al., 2000). In parallel with these human studies suggesting an age-related decline in hypothalamic GnRH secretion, recent studies in mice have proposed the involvement of the GnRH neuroendocrine system in systemic aging (Zhang et al., 2013).

[0011] In view of the above, we evaluated whether acquired GnRH deficiency could play a role in the age-dependent acquisition of cognitive decline in DS (Schapiro et al., 1987).

[0012] Both GnRH neurons and olfactory neurons originate from the same group of precursor cells in the olfactory placode, and GnRH neurons migrate into the hypothalamus of the brain during further embryonic development.This shared origin highlights the connection between the GnRH system and the olfactory system.The inventors therefore further evaluated whether GnRH deficiency may be involved in the cognitive impairment associated with olfactory dysfunction.

[0013] Detailed Description

[0014] Using a mouse model of DS (Ts65Dn), we demonstrated that anosmia, a loss of olfactory function, along with cognitive impairment, is a hallmark of both DS (Nijjar and Murphy, 2002) and dementia (Doty, 2012), and is associated with a gradual loss of GnRH expression in the brain during postnatal development and a change in the pattern of pulsatile LH secretion in adulthood. We further demonstrated that inhibiting the activity of GnRH-R-expressing neurons in the hippocampus and cortex induced cognitive and olfactory impairments in control wild-type mice. Notably, we demonstrated that pulsatile GnRH treatment, commonly administered to patients with congenital hypogonadotropic hypogonadism to manage infertility (Boehm et al., 2015), reversed the olfactory and cognitive-related deficits in DS.

[0015] The present inventors further demonstrated that pulsatile GnRH treatment can reduce the expression of AD-related proteins, such as TauCter, in the cortex of Ts65Dn mice, and that this is before the appearance of AD symptoms, i.e., in the early stages of AD. It is noteworthy that Ts65Dn mice are also considered a useful model of AD, due to the fact that DS patients (human or mouse) are at a very high risk of developing Alzheimer's disease (AD) due to overexpression of the APP gene, which is located on chromosome 21 (or the corresponding chromosome 16 in mice).

[0016] The present application thus shows that: - GnRH deficiency contributes to the age-dependent acquisition of cognitive decline in DS; - Inhibition of GnRH-R-expressing neurons in extrahypothalamic structures induces both cognitive and olfactory impairment; Pulsatile GnRH treatment makes it possible to reverse the impairments associated with olfaction and cognition in DS; and - GnRH treatment makes it possible to reduce the expression of proteins associated with AD, which is known to be associated with olfactory dysfunction (see, for example, Doty, 2012).

[0017] As noted above, several cognitive disorders other than DS and AD (e.g., Parkinson's disease, dementia, or non-Down syndrome retardation) are associated with concomitant olfactory dysfunction and cognitive decline. Cognitive disorders in which cognitive decline is associated with olfactory dysfunction thus share the same pathological pathways.

[0018] GnRH neurons are derived from olfactory precursor cells during embryonic development, and as demonstrated herein, defects in GnRH expression induce olfactory and cognitive impairment.

[0019] Thus, without being bound by theory, the present application indicates that GnRH deficiency is involved in the pathological pathway of cognitive impairment in which cognitive decline is associated with olfactory impairment.

[0020] The present application thus demonstrates that GnRH replacement treatment can reverse olfactory and cognitive impairment in cognitive disorders.

[0021] Thus, the present invention relates to GnRH for use in the treatment of cognitive impairment in a patient in need thereof, wherein said GnRH is administered by pulsatile administration.

[0022] The present invention particularly relates to GnRH for use in the treatment of cognitive impairment in a patient in need thereof, wherein said GnRH is administered by pulsatile administration, and wherein said patient has olfactory dysfunction.

[0023] The present invention also relates to a method for treating cognitive impairment in a patient in need thereof, comprising pulsatile administration of GnRH to said patient, hi certain embodiments, said patient has olfactory dysfunction.

[0024] GnRH is a neurohormone released in a pulsatile manner from GnRH neurons located in the hypothalamus. GnRH expression controls the secretion of luteinizing hormone (LH) and follicle-stimulating hormone (FSH) from the anterior pituitary gland. Differential GnRH pulse frequency and amplitude alter the secretion pattern of FSH and LH. GnRH is a decapeptide. In the context of the present invention, "GnRH" refers to the above GnRH decapeptide and any water-soluble, ionizable form of GnRH (including free base, salt, or derivative, homolog, or analog thereof). In certain embodiments, "GnRH" refers to gonadorelin, and in particular: GnRH hydrochloride (HCl), commercially available as FACTREL®, HRF®, and LUFORAN®; or - GnRH acetate / diacetate commercially available as LUTRELEF®, LUTREPULSE®, KRYPTOCUR®, LHRHFERRING®, LUTAMIN®, RELISORML®, CYSTORELIN®, or RELISORM®.

[0025] Gonadorelin is a synthetic decapeptide that has the same amino acid sequence as endogenous GnRH synthesized in the human hypothalamus and thus has the same pharmacological and toxicological profile as endogenous GnRH.

[0026] In the context of the present invention, GnRH is administered in a "pulsatile" manner. As described above, GnRH is naturally secreted with a specific pulse frequency and amplitude. The frequency and amplitude vary according to species, sex, and age. In the context of the present invention, "pulsatile" administration reproduces the natural endogenous GnRH pulse peak of a middle-aged adult of the same species and sex as the patient (i.e., between 20 and 30 years old in humans), i.e., the frequency and amplitude of GnRH observed in a middle-aged adult of the same species and sex as the patient. Pulsatile GnRH administration is commonly used to treat reproductive disorders such as amenorrhea and infertility resulting from hypogonadotropic hypogonadism, e.g., Kallmann syndrome (Boehm et al. 2015; or see, e.g., Leyendecker et al. 1980; Schoemaker et al. 1981; Reid et al. 1981; Keogh et al. 1981, Hayes et al. 2013; or the ongoing clinical trial referenced in the U.S. National Library of Medicine under accession number NCT00383656). Thus, those skilled in the art know the amount / frequency of administration used to achieve an endogenous GnRH pulse peak.

[0027] Typically, endogenous GnRH pulse peaks in humans vary from 25 to 600 ng / kg per pulse, with peaks every 60 to 180 min (see Hayes et al. 2013).

[0028] Typically, the GnRH pulse peak in men corresponds to 10 to 40 ng / kg GnRH every 60 to 180 minutes, and especially 20 to 30 ng / kg GnRH every 90 to 150 minutes. A typical GnRH pulse peak in men is 25 ng / kg GnRH every 120 minutes (see Boehm et al. 2015).

[0029] Typically, the GnRH pulse peak in women corresponds to administration of 50 to 100 ng / kg GnRH every 60 to 120 minutes, especially 65 to 85 ng / kg GnRH every 80 to 110 minutes. A typical GnRH pulse peak in women is 75 ng / kg GnRH every 90 minutes (i.e., 3 to 10 μg GnRH every 90 minutes - see Boehm et al. 2015 or clinical trial NCT00383656).

[0030] Those skilled in the art know how to administer the pulsatile GnRH to patients. GnRH is typically administered via transdermal, oral, or parenteral administration. As used herein, the term "parenteral" includes subcutaneous administration, intravenous administration, intraarterial administration, intraperitoneal administration, intrathecal administration, intramuscular administration, and infusion administration. GnRH is typically combined with a pharmaceutically acceptable excipient to form a therapeutic composition suitable for transdermal or parenteral administration.

[0031] GnRH is typically administered via a transdermal delivery system, such as a pump (e.g., a portable infusion pump) that delivers a GnRH bolus at specific intervals to replicate the endogenous GnRH pulse peak. The LUTREPULSE® system produced and commercialized by Ferring Pharmaceuticals is an example of such a pump. Other suitable pumps are disclosed, for example, in the international patent application published under reference WO2007041386 or in U.S. Patent Nos. 4,722,734; 5,013,293; 5,312,325; 5,328,454; 5,336,168; and 5,372,579.

[0032] Alternatively, GnRH can be administered via transplanted GnRH-producing neurons. According to this embodiment, GnRH-producing neurons are transplanted into patients to replace the patients' natural GnRH neurons, thereby treating GnRH deficiency. As demonstrated in the Examples section of this application, cell therapy based on the transplantation of GnRH-secreting neurons can restore pulsatile GnRH secretion and reverse the olfactory and cognitive-related disorders in Ts65Dn mice.

[0033] As described in Lund et al. (2013), GnRH-secreting neurons can be generated from human pluripotent stem cells (hPSCs), particularly human induced pluripotent stem cells (hiPSCs), such as those established from healthy donor fibroblasts. The production of such GnRH-secreting neurons does not require the destruction of human embryos.

[0034] As described throughout this application, the present invention aims to restore pulsatile GnRH secretion, particularly to treat cognitive impairment associated with olfactory dysfunction. GnRH expression is regulated through the action of several miRNAs. In particular, members of the miRNA-200 family and miR-155 are known to regulate Zeb1 and Cebpb, two important repressors of GnRH promoter activators, respectively (see Messina et al. (2016) and the international patent application disclosed under reference WO2017 / 182580). The inventors have thus demonstrated that overexpression of miRNA-200 family members (referred to as "miR-200") and / or miR-155 can restore pulsatile GnRH expression in patients. In particular, the inventors have demonstrated that hypothalamic overexpression of miR-200 rescues both the ability to distinguish odors and the ability to recognize novel objects in Ts65Dn mice. Thus, in a further embodiment, the present invention relates to miR-200 and / or miR-155 for use in the treatment of cognitive impairment in a patient in need thereof.

[0035] In certain embodiments, the present invention relates to miR-200 and / or miR-155 for use in the treatment of cognitive impairment in a patient in need thereof, wherein the patient has olfactory dysfunction.

[0036] The present invention also relates to a method for treating cognitive impairment in a patient in need thereof, comprising administering to said patient a therapeutically effective amount of miR-200 and / or miR-155, hi certain embodiments, said patient has olfactory dysfunction.

[0037] By "therapeutically effective amount" is intended the minimum amount of active agent (i.e., miRNA) required to confer a therapeutic benefit to a patient, i.e., in the present case, to restore GnRH pulsatile secretion in said patient.

[0038] MicroRNAs (miRs) are small non-coding RNAs that are emerging as critical regulators of biological processes. "MicroRNA," "miRNA," or "miR" refers to non-coding RNAs that are about 18 to about 25 nucleotides in length. These miRs can be derived from multiple sources, including individual genes that encode the miRNA, from introns of protein-coding genes, or from polycistronic transcripts that often encode multiple closely related microRNAs.

[0039] The miR-200 family includes miR-200a (human sequence accessible in the miR database under reference MI0000737 or in the Ensembl database under reference ENSG00000207607), miR-200b (human sequence accessible in the miR database under reference MI0000342 or in the Ensembl database under reference ENSG00000207730), miR-200c (human sequence accessible in the miR database under reference MI0000650 or miR-200 includes miR-141 (human sequence accessible in the Ensembl database under reference ENSG00000207713), miR-141 (human sequence accessible in the miR database under reference MI0000457 or in the Ensembl database under reference ENSG00000207708), and miR-429 (human sequence accessible in the miR database under reference MI0001641 or in the Ensembl database under reference ENSG00000198976). By "miR-200" it is referred herein to any miRNA of the miR200 family listed above.

[0040] MiR-155 has the sequence shown under reference MI0000681 in the miR database and under reference ENSG00000283904 in the Ensembl database.

[0041] All these miRNAs are known to those skilled in the art.They can be administered by any known method for delivering nucleic acid to the nucleus of cells in vivo, and can restore pulsatile GnRH expression in patients who need it.In particular, miR-200 family members and miR-155 can be administered using recombinant technology.For example, suitable vectors can be inserted into host cells and expressed in the cells to express the above miRs.

[0042] As used herein, the term "vector" refers to a nucleic acid molecule capable of transporting another nucleic acid to which it has been linked. One type of suitable vector is a viral vector (e.g., replication-defective retroviruses, adenoviruses, lentiviruses, and adeno-associated viruses (AAV)).

[0043] According to the present invention, pulsatile GnRH, miR200, and / or miR155 are administered for the treatment of cognitive disorders. The "cognitive disorder" can be any known cognitive disorder, particularly a cognitive disorder involving cognitive decline associated with olfactory dysfunction.

[0044] "Cognitive impairment," also referred to as "neurocognitive disorder," is characterized by a decline from a previously achieved level of cognitive functioning (see Sachdev et al. 2014), namely, impairments in perceptual-motor functions (visual perception, visuo-constructive reasoning, perceptual-motor coordination), language (object naming, word finding, fluency, grammar and syntax, receptive language), learning and memory (free recall, cued recall, recognition memory, semantic and autobiographical long-term memory, implicit learning), social cognition (emotion recognition, theory of mind, insight), complex attention (sustained attention, divided attention, selective attention, processing speed), and executive function (planning, decision-making, working memory, response to feedback, inhibition, flexibility). For a review, the fifth edition of the Diagnostic and Statistical Manual of Mental Disorders (DSM-V—Field Reference), published by the American Psychiatric Association (APA), provides a general framework for diagnosing neurocognitive disorders. The DSM-V specifically describes major cognitive syndromes. It classifies cognitive disorders into three categories: delirium, mild, and severe neurocognitive disorders, and defines criteria for delineating specific etiological subtypes of mild and severe neurocognitive disorders. The main etiological subtypes are Alzheimer's disease, frontotemporal lobar degeneration, HIV infection, Huntington's disease, Lewy body disease, Parkinson's disease, prion diseases, substance and / or drug use, traumatic brain injury, and vascular disease.

[0045] As mentioned above, several cognitive disorders include cognitive decline associated with olfactory dysfunction, such as Down's syndrome, Alzheimer's disease, Parkinson's disease, dementia, or non-Down's syndrome retardation, as disclosed in Doty et al. (2012).

[0046] According to a particular embodiment, the cognitive disorder according to the present invention is Down's syndrome. According to another embodiment, the cognitive disorder is Alzheimer's disease. According to a further embodiment, the cognitive disorder is Parkinson's disease.

[0047] Furthermore, age-related cognitive decline, particularly mild cognitive impairment in older adults, is known to be associated with early olfactory dysfunction (see Wilson et al. 2007). Thus, in a further aspect, the cognitive disorder according to the present invention is age-related cognitive decline.

[0048] Olfactory dysfunction generally appears in the early or middle stages of cognitive disorders. Thus, according to another embodiment, the cognitive disorder is in the early or middle stages. According to a particular embodiment, the cognitive disorder is in the early stage.

[0049] For example, Alzheimer's disease is known to progress along a spectrum with three stages: an early, asymptomatic preclinical stage; a mid-stage characterized by mild cognitive impairment; and a final stage characterized by dementia symptoms. The early stage involves brain changes, including amyloid deposition and other neuronal changes, but without significant clinical symptoms. The mid-stage involves symptoms of memory and / or other thinking problems that are greater than normal for a person's age and education, but do not interfere with their ability to function independently. The final stage of AD involves memory loss, word-finding difficulties, and visual / spatial problems severe enough to impair a person's ability to function independently (see Sperling et al. 2011). During AD, olfactory dysfunction manifests primarily during the asymptomatic preclinical stage, as well as during the mid-stage corresponding to "mild cognitive impairment." Thus, in certain embodiments, the cognitive disorder according to the present invention is early-stage Alzheimer's disease.

[0050] Olfactory dysfunction also appears during the early stages of Parkinson's disease (see Ross et al. 2008). Parkinson's disease progresses according to five stages known as the Hoehn and Yahr Scale. The early stages of Parkinson's disease according to the present invention are stages I, II, and earlier (i.e., "pre-Parkinson's disease"). Thus, in another specific embodiment, the cognitive impairment according to the present invention is early-stage Parkinson's disease.

[0051] As shown in Wilson et al. (2007), olfactory dysfunction appears early during age-related cognitive decline. Thus, according to a further embodiment, the cognitive impairment according to the present invention is an early stage of age-related cognitive decline.

[0052] Also, as explained above, patients with DS exhibit lifelong intellectual disability, but particularly exhibit strong cognitive decline around the age of 40 and dementia after the age of 40. Therefore, GnRH replacement therapy, used from adolescence, or at least in young adults 18-20, can improve cognitive performance and delay the onset of dementia in patients. Thus, in a further embodiment, the cognitive impairment according to the present invention is "early stage" DS, i.e., before the age-related cognitive decline that appears in patients 40 years of age or older.

[0053] The cognitive impairment according to the present invention is associated with olfactory dysfunction (to specifically target cognitive impairment associated with GnRH deficiency). "Olfactory dysfunction" corresponds to an alteration in the sense of smell. The alteration can be a complete loss of smell, also called "anosmia," or a partial sense of smell, referred to as "hyposmia" or "microsmia." Several olfactory tests are available to those skilled in the art who are familiar with using them to evaluate a patient's olfactory function. Olfactory tests can be divided into psychophysical tests, electrophysiological tests, and psychophysiological tests (see, for example, Doty et al. (2007); Eibenstein et al. (2005) and Kobal et al. (1994)). An example of a test involves presenting a familiar odorant to the patient, who then must choose the name of the odor from a list of options. Threshold tests can also be used. They aim to determine the lowest concentration of an odorant that can be identified by the patient.

[0054] In the context of the present invention, a "patient" is a mammal (e.g., dog, cat, pig). In certain embodiments, the patient is a human.

[0055] As used herein, the terms "treat" or "treatment" relate to reversing, alleviating, inhibiting the progression of, or preventing the disorder or condition to which such term applies, or reversing, alleviating, inhibiting the progression of, or preventing one or more symptoms of the disorder or condition to which such term applies.

[0056] The present invention is further illustrated by the following figures and examples, which should not, however, be construed in any way as limiting the scope of the present invention. [Brief explanation of the drawings]

[0057] [Figure 1] Figure 1: Ts65Dn mice exhibit age-dependent loss of the ability to recognize novel odors and objects. (A) Schematic diagram of the experimental design performed to assess mice's ability to discriminate olfactory and visual cues at different stages during postnatal development. (B) A habituation / dishabituation test was used to assess the ability to discriminate between different odors. First, one odor is presented four times consecutively during the habituation phase; then, a novel odor is presented during the dishabituation phase. (C) A novel object recognition test was used to assess recognition memory. The object recognition score was calculated as the time the animal spent exploring the novel object during trial 2 over the total exploration time. (D) At P35, Ts65Dn mice were unable to discriminate between two different odors compared to wild-type littermates (WT), but were equally able to recognize the introduction of a novel object in their environment. (E) At adult age, Ts65Dn mice showed a loss of the ability to discriminate between both different odors and objects compared to WT littermates. *p<0.05; **p<0.01. [Figure 2] Figure 2: Expression levels of APP, CTF, and Tau-Cter in the hippocampus and cortex of Ts65dn mice. (A, B) Quantification of APP, CTF, and Tau-Cter protein levels in the hippocampus (A) and cortex (B) of 3-month-old and middle-aged adult (8-12 months) Ts65dn and WT male mice with or without transplantation (sham) using the POA (WT-POA). (C, D) Quantification of APP, CTF, and Tau-Cter protein levels in the hippocampus (C) and cortex (D) of 3-month-old and middle-aged adult (8-12 months) Ts65dn and WT female mice. GAPDH was used as a loading control. *p<0.05; **p<0.01; ***p<0.001. [Figure 3]Figure 3: Evaluation of the functional involvement of miR-200 family members in odor and object recognition tasks in Ts65Dn mice. miR-200b or control miRNA was selectively overexpressed in the hypothalamus of adult male Ts65Dn mice using an adeno-associated viral vector (AAV9, Vector Biolabs). Overexpression of miR-200b rescued both the ability to discriminate odors (A) and the ability to recognize novel objects (B) in Ts65Dn mice. *p<0.05; **p<0.01; ***p<0.001. [Figure 4] Figure 4: Pulsatile GnRH infusion reverses both olfactory and cognitive-related deficits in Ts65Dn mice. (A) Schematic illustrating pharmacological treatment performed in adult Ts65Dn mice with LUTRELEF®, a clinic-used GnRH peptide. Mice were implanted with osmotic pumps and received continuous infusions of vehicle or LUTRELEF® (0.25 μg / 3 h); or with programmable minipumps (iPRECIO) and received pulsed LUTRELEF® infusions (every 3 h; 0.25 μg peak with a 10-min peak duration). (BF) Representative graphs of LH pulse assessment after 15 days of subcutaneous administration of vehicle or LUTRELEF®. Pulse infusion of LUTRELEF® in Ts65Dn males significantly increased LH pulse frequency and LH pulse amplitude (G) compared to continuous infusion of LUTRELEF®, which prevented both LH pulse frequency and LH pulse amplitude in both WT and Ts65Dn mice (G). Pulse infusion of LUTRELEF® rescued the ability to discriminate between different odors (H) and cognitive impairment (I) in Ts65Dn mice. *p<0.05; **p<0.01; ***p<0.001. [Figure 5]Figure 5: Acute chemogenetic inhibition of neurons expressing the GnRH receptor (GnRH-R) impairs cognitive and olfactory abilities in adult control mice. (A) Schematic illustrating the protocol for testing the effects of chemogenetic inhibition of GnRH-R-expressing neurons on cognitive and olfactory abilities. Six-month-old Gnrhr::Cre mice were tested before and after administration with the hM4D(Gi) DREADD viral vector. Two black dots indicate the site of viral administration. Clozapine-n-oxide (CNO)-induced chemogenetic inhibition of GnRH-R-expressing neurons impaired the ability of Gnrhr::Cre-DREADD-treated mice to discriminate between different odors (B) and their cognitive abilities (C), whereas saline administration had no effect (B, C). All dots represent one subject. Statistical differences were tested using one-way repeated measures analysis of variance. (B: Control vs. saline, q(2) = 1.77, P = 0.54, n = 3 and 3; Control vs. CNO, q(2) = 60.28, P < 0.0001, n = 3 and 3; Saline vs. CNO, q(2) = 16.92, P = 0.01, n = 3 and 3. C: Control vs. saline, q(2) = 1.39, P = 0.65, n = 3 and 3; Control vs. CNO, q(2) = 9.56, P = 0.04, n = 3 and 3; Saline vs. CNO, q(2) = 11.27, P = 0.03, n = 3 and 3). *P < 0.05; ***P < 0.001.

[0058] Example

[0059] Example 1

[0060] Ts65dn male mice exhibit delayed sexual maturation, hypogonadism, and infertility.

[0061] Abnormalities in sexual development and infertility have been described in patients with Down syndrome (DS) (Hsiang et al., 1987). Similarly, altered adult fertility in Ts65dn mice has previously been reported, with males exhibiting infertility and females being subfertile (Moore et al., 2010); however, sexual maturation has never been explored in this mouse model. Herein, we characterized the phenotype of reproductive maturation in Ts65dn mice from birth to adulthood.

[0062] Ts65dn males were smaller and showed significantly lower weight gain than wild-type littermates during postnatal maturation and the pubertal transition. A significant delay in the onset of puberty was observed in male Ts65dn mice compared with wild-type littermates. Ts65dn males exhibited a delay in balanopreputial separation, a smaller penis, and their testes did not descend into the scrotum, all of which are external signs used to track postnatal sexual maturation. Body weight at balanopreputial separation was identical between Ts65Dn and wild-type littermates, suggesting that delayed growth may contribute to the delay in sexual maturation. Furthermore, Ts65Dn mice exhibited an irregular profile of expression of major urinary proteins, the excretion of which in urine is stimulated by testosterone and is also used as a marker of sexual maturation in mice. In adulthood, Ts65dn males manifested severe hypogonadism, exhibiting lower testis weight and smaller testes compared to wild-type mice.

[0063] Because pulsatile GnRH secretion is essential for fertility (Belchetz et al., 1978), we next assessed the secretory profile of luteinizing hormone (LH), a surrogate marker of GnRH secretion, by performing serial blood sampling from the tail in adults. Although no differences were found in LH pulse frequency, Ts65dn males exhibited significantly reduced LH pulse amplitude compared with wild-type littermates. Because deregulation of LH pulse status can be explained by changes in the GnRH neuron afferent network during postnatal development (Tata et al., 2018), we analyzed glutamatergic and GABAergic apposition to GnRH neurons. We did not find any differences in the number of apposed vesicular glutamate transporter 2 (vGluT2)- or GABA transporter (vGaT)-immunoreactive puncta on the somata of GnRH neurons in Ts65dn mice compared with wild-type littermates at both postnatal day 12 (P12) and P35. To further explore the function of the hypothalamic-pituitary-gonadal (HPG) axis during sexual maturation, circulating levels of gonadotropins, LH, follicle-stimulating hormone (FSH), and testosterone were measured at minipuberty (P12), the first prenatal activation of the HPG axis, and in adulthood. At P12, LH, but not FSH, levels were found to be significantly elevated in Ts65dn males compared with wild-type littermates. In adult male DS mice, both LH and FSH levels were found to be significantly increased, whereas testosterone levels were comparable to those of wild-type mice. These results are consistent with findings reported in adult DS males, in which plasma testosterone levels were normal but FSH and LH levels were found to be significantly elevated (Hsiang et al., 1987). To explore the ability of the hypothalamus to respond to deficiencies in gonadal steroids, we next measured serum levels of testosterone and LH before (control) and 14 and 30 days after bilateral orchiectomy.The results show that orchiectomy strongly increases circulating LH levels in both wild-type and Ts65Dn mice (data not shown). Similar to the intact state, LH levels were found to be significantly higher after orchiectomy in Ts65Dn mice than in wild-type littermates. Together, these data indicate that communication processes between the gonads and the hypothalamus, including gonadal steroids, appear to be unchanged in Ts65Dn mice.

[0064] Phenotypic characterization of sexual maturation in females showed that, similar to males, weight gain was significantly lower in Ts65dn mice than in wild-type littermates during postnatal development and the pubertal transition. Ts65dn females showed delayed vaginal opening, an indicator of an increase in circulating estradiol levels, but no differences were found in the date of onset of first estrus, which strictly correlates with the attainment of reproductive competence, i.e., puberty. Body weights at vaginal opening and the onset of puberty were lower in Ts65dn females than in wild-type littermates. Adult Ts65dn females also exhibited lower uterine weights during diestrus. Although Ts65dn female mice exhibited regular estrous cycles, they showed impaired tolerance, with fewer litters produced over 120 days and fewer pups per litter, compared with wild-type littermates. However, no differences were detected in the pattern of LH secretion or in circulating levels of FSH between Ts65dn and wild-type female mice during diestrus.

[0065] Ts65dn mice exhibit an age-dependent loss of GnRH expression.

[0066] Because proper GnRH neuronal network development is essential for sexual maturation and proper HPG axis function, we next assessed the distribution of GnRH neurons in the brains of Ts65dn mice. To this end, we performed whole-mount immunolabeling of neonatal (P0) and adult (P90) brains for GnRH, followed by 3D imaging of solvent-cleared organs (3DISCO), which has previously been used to similarly examine neuronal connectivity in the embryonic and postnatal brains (Belle et al., 2017; Casoni et al., 2016). 3D analysis revealed no differences in the distribution and number of GnRH cell bodies between Ts65dn and WT littermates at birth (P0), but Ts65dn mice showed a significant loss of GnRH-immunoreactive cell bodies and fibers in adulthood. Hypothalamic GnRH peptide content progressively increases between birth and puberty, a process that accelerates with the onset of puberty during infancy (P7-P12) (Messina et al., 2016; Prevot, 2015). To identify the stage at which GnRH expression begins to decline, we next examined hypothalamic GnRH immunoreactivity during postnatal development in Ts65dn mice. Conventional neuroanatomical analysis demonstrated that a loss in the number of hypothalamic GnRH-immunoreactive neurons occurs only after the onset of puberty in Ts65Dn mice. Recent studies in humans have revealed that, in addition to their distribution within the hypothalamus, GnRH cell bodies and fibers are also found in several extrahypothalamic brain regions (Casoni et al., 2016). Thus, tracing GnRH neuron fibers in 3D highlighted not only the classic pituitary GnRH projection in the median eminence, but also numerous GnRH neuron projections in extrahypothalamic regions in adult wild-type mice. GnRH-immunoreactive fibers could indeed be easily traced to the medial habenula and anterior dorsal amygdala (Rance et al., 1994), and were often found following or in close association with the walls of the lateral ventricles.However, in adult Ts65dn mice, although GnRH fibers could be visualized in the median eminence, the extended projection network of GnRH immunoreactivity seen in wild-type mice was absent. The widespread distribution of GnRH-immunoreactive fibers in extrahypothalamic regions in wild-type mice suggests that GnRH neurons that control species survival may also be involved in nonreproductive processes. Corollary, the absence of these extrahypothalamic GnRH fibers in Ts65Dn mice raises the intriguing hypothesis that this GnRH deficiency may contribute to the cognitive phenotype in this mouse model of DS.

[0067] Ts65dn mice exhibit age-dependent loss of olfactory and cognitive function.

[0068] DS patients and Ts65Dn mice exhibit not only mental retardation (Epstein et al., 1991; Reeves et al., 1995), but also age-related olfactory impairment (Bianchi et al., 2014; Nijjar and Murphy, 2002). Interestingly, dysfunction in the ability to perceive odors is associated with GnRH deficiency in patients with Kallmann syndrome (Boehm et al., 2015). Because olfactory cues play an important role in suckling behavior ( Risser and Slotnick, 1987 ), olfaction at birth in Ts65dn pups, which exhibit a normal complement of GnRH neurons and comparable amounts of milk in their stomachs to wild-type littermates (not shown), did not appear to be significantly affected, in contrast to mice carrying a mutation in the Kalman gene that die at birth, with defective GnRH neuron migration from the nose to the brain during embryonic development ( Hanchate et al., 2012 ). To assess whether the loss of GnRH immunoreactivity seen in Ts65dn mice is associated with olfactory and cognitive decline in these mice, we performed a habituation / dishabituation test to assess the mice's ability to discriminate between different odors (Breton-Provencher et al., 2009) and a novel object recognition test to assess recognition memory in prepubertal (P35, when GnRH immunoreactivity is comparable to that of control littermates) and adult (>P60, when Ts65Dn mice experience a loss in GnRH immunoreactivity) mice (Leger et al., 2013) (Figure 1a). We found that wild-type littermates showed significantly reduced sniffing times when odors were reintroduced (habituation) and a recovery of sniffing behavior when novel odors were presented (dishabituation); both male and female Ts65Dn mice at prepubertal ages were unable to distinguish between different odors (Fig. 1b), indicating a clear olfactory deficit in these mice. In contrast, Ts65Dn mice were equally able to recognize the introduction of novel objects in their environment when compared with wild-type littermates of both sexes at P35 (Fig. 1d).However, when the tests were performed after 2 months, i.e., in young adults, both olfaction and recognition memory were found to be impaired in Ts65Dn mice (Figure 1c). These results, interestingly, parallel the brain loss of GnRH expression and indicate the occurrence of age-related cognitive decline in both male and female Ts65Dn mice (Figure 1e). To determine whether cognitive decline in Ts65Dn mice is due to abnormal gonadal function, we next assessed olfaction and recognition memory in both wild-type and Ts65Dn mice 3 months after bilateral orchiectomy. Orchiectomized animals behaved similarly to intact animals (Figure 1c, e) (Figure 1f, g), suggesting that the olfactory and cognitive impairments seen in Ts65Dn mice are unlikely to be due to gonadal dysfunction or altered communication between the brain and gonads.

[0069] Triplication of the amyloid precursor protein (App) gene, present in both DS patients and mice (Reeves et al., 1995), has been linked to the early-onset Alzheimer's disease (AD) phenotype observed in DS. To determine whether the acquired deficits observed in Ts65dn mice parallel the development of AD pathology in DS, we next analyzed APP, its C-terminal fragment (CTF), and Tau C-terminus (Tau-Cter) by Western blot. Protein analysis revealed a significant increase in APP expression in the hippocampus of middle-aged (8-12 months) Ts65dn male mice (Figure 2a) compared with wild-type mice, but not in young adult (3 months) Ts65dn male mice. In contrast, no changes were seen in the expression of CTF and Tau-Cter in the hippocampus of Ts65dn males (Figure 2a). In the cortex, no changes were observed in the expression of AD-related proteins in Ts65dn males compared with wild-type littermates (Fig. 2b). In females, we found a significant increase in APP and CTF expression in the hippocampus (Fig. 2c) and cortex (Fig. 2d) of 12-month-old Ts65Dn females, but no differences were observed in tau-Cter expression in the hippocampus or cortex (Fig. 2d). Thus, consistent with previous studies showing age-dependent dysregulation of APP metabolism in the brains of Ts65Dn mice (Choi et al., 2009), we found that in both sexes, APP expression was unaffected in young 3-month-old Ts65dn mice but increased in middle-aged animals compared with wild-type littermates (Fig. 2ad). Overall, these data demonstrate that olfactory and cognitive decline in Ts65dn mice occurs before any overt changes in APP expression.

[0070] Ts65dn mice exhibit an imbalance in the miRNA-gene network that controls Gnrh expression.

[0071] The loss of GnRH immunoreactivity observed during postnatal maturation in Ts65dn mice is interestingly reminiscent of that observed in mice in which Dicer (an RNAse-III endonuclease essential for microRNA biogenesis) was selectively knocked out in GnRH neurons (Messina et al., 2016). To determine whether these mice with acquired GnRH deficiency also recapitulated some of the behavioral phenotypes of Ts65dn mice, we subjected adult Gnrh::Cre;DicerloxP / loxP mice to olfactory and cognitive tests. We found that the lack of mature miRNA expression in GnRH neurons, which leads to postnatal loss of GnRH expression (Messina et al., 2016), also impaired these mice's ability to discriminate odors and recognize novel objects, thus phenocopying Ts65dn mice (data not shown).

[0072] Both human chromosome 21 and mouse chromosome 16, duplications of which have been used to engineer the Ts65Dn mouse strain (Reeves et al. 1995), have previously been reported to contain at least five miRNAs (miR-99a, let-7c, miR-125b-2, miR-155, and miR-802) that have been shown to be overexpressed in DS brains (Elton et al., 2010). The effect of copy number changes in these miRNAs thus results in reduced expression of specific target genes, which may contribute, at least in part, to the cognitive phenotype of these individuals (Elton et al., 2010; Kuhn et al., 2010). Interestingly, we recently reported that miR-99a, let-7c, miR-125b-2, and miR-155 (but not miR-802) are expressed by GnRH neurons and that their expression significantly increases between P7 and P12, i.e., at the onset of puberty (Messina et al., 2016). Furthermore, some of these miRNAs (including miR155) can also affect the expression of other miRNA species, such as members of the miR-200 family, which play important roles in regulating GnRH expression during postnatal development (including adulthood) (Messina et al., 2016). Members of the miRNA-200 family and miR-155 are known to regulate Zeb1 and Cebpb, two important repressors of GnRH promoter activators, respectively (Messina et al., 2016). To investigate whether miRNAs are involved in the molecular mechanisms underlying the postnatal loss of GnRH immunoreactivity in Ts65dn mice, we analyzed the expression of miRNAs and different genes in the preoptic area (POA), which contains the major population of GnRH neurons in rodents, of adult wild-type and Ts65Dn littermates.Unexpectedly, real-time PCR analysis revealed no overexpression of miR-155, let-7c, miR-125b-2, miR-802, and miR-99a in the POA of Ts65dn mice, but rather reduced expression of these genes (data not shown). Interestingly, the data showed a significant upregulation of Zeb1 and Cebpb mRNA expression levels in the POA of adult Ts65dn mice, accompanied by a marked decrease in Gnrh expression (Fig. 4c). This was also associated with a downregulation of the expression of most miRNA-200 family members (data not shown). In contrast, no differences were observed in the expression of Dicer, Nos1 (nitric oxide synthase 1) and its receptor, sGC (soluble guanylate cyclase), or several known GnRH regulators, including Kiss1, kisspeptin receptor (Kiss1r), otx2, and meis1 (Messina et al., 2016). To gain further insight into the molecular mechanisms involved in the postnatal loss of GnRH expression in neurons of Ts65Dn mice, we constructed Gnrh::Gfp;Ts65dn reporter mice, which express GFP under an ectopic GnRH promoter. GnRH neurons were isolated by fluorescence-activated cell sorting (FACS) at P12, a developmental stage preceding the dramatic decline in GnRH expression, as previously described (Messina et al., 2016) (data not shown). Real-time PCR analysis of FACS-isolated GFP-expressing GnRH neurons from Gnrh::gfp;Ts65Dn and Gnrh::gfp littermates revealed that Gnrh mRNA expression was significantly lower in Gnrh::gfp;Ts65Dn than in control littermates at P12. These altered expression levels were associated with an increase in Zeb1 expression levels and with significant downregulation of transcripts encoding the Gnrh promoter activators Otx2 and Kiss1r. Cebpb and Dicer expression remained unchanged.Taken together, these data support the idea that altered expression of miR200 family members in Ts65dn mice underlies the gradual loss of GnRH expression during postnatal development by creating an imbalance in Gnrh promoter activity that controls the mir200 / Zeb1 / Kiss1R / Otx2 miRNA gene micronetwork.

[0073] To determine the putative role of the miR-200 family in the acquisition of olfactory and cognitive impairments in Ts65Dn mice, miR-200b was selectively overexpressed in the hypothalamus of adult male Ts65dn mice using stereotactic administration of adeno-associated viral vectors (AAV). Both olfactory and cognitive abilities were assessed before and after viral infection in each mouse subjected to this experimental protocol. After a 3-month recovery period, data showed that hypothalamic overexpression of miR-200b rescued both the ability to discriminate odors (Figure 3a) and the ability to recognize novel objects (Figure 3b) in Ts65Dn mice, whereas Ts65Dn mice administered with control AAV remained olfactory- and memory-deficient.

[0074] GnRH replacement treatment reverses olfactory and cognitive-associated deficits in Ts65Dn mice.

[0075] We next sought to determine whether the olfactory and cognitive deficits exhibited by adult Ts65dn mice could be rescued by GnRH replacement using cell therapy and pharmacological treatment. We first employed a procedure previously described to restore fertility in hypogonadal mice, demonstrating the ability of neonatal POA grafts transplanted into the third ventricle (3v) to establish functional connections with host tissue (Charlton et al., 1987). Specifically, neonatal cells from the POA of wild-type pups (P0-P2) were enzymatically dissociated using a papain dissociation protocol described elsewhere (Messina et al., 2016) and stereotaxically administered into the 3v of adult Ts65dn mice. Both olfactory and cognitive abilities were assessed prior to administration. After a 3-month recovery period, we observed that transplantation of wild-type neonatal preoptic area (WT-POA) tissue into Ts65dn males rescued both olfactory and cognitive impairments compared with Ts65Dn mice (sham group) administered with vehicle solution. We also performed a Y-maze test to assess short-term nonvisuospatial memory in these animals. We found that, in contrast to Ts65Dn-Sham mice, Ts65dn-transplanted animals spent the same amount of time in the novel arm as their WT-Sham littermates. Furthermore, both WT-Sham and transplanted Ts65dn mice required less time to initially enter the novel arm compared with Ts65Dn-Sham mice. Similar results were observed in adult Ts65dn females that recovered cognition after transplantation of neonatal WT-POA tissue. However, rescue of olfactory ability was not observed in Ts65dn-transplanted females. Neonatal POA transplantation did not restore fertility in Ts65dn males (data not shown) or estrous cycling in aged Ts65dn females (data not shown), indicating that recovery of olfactory ability and cognition in these mice is independent of restoration of gonadal function.Western blot analysis revealed no changes in APP and CTF expression in the cortex and hippocampus of Ts65dn males after neonatal POA transplantation compared with Ts65Dn controls (sham) (Fig. 2a–d), indicating that graft-mediated rescue is not associated with visible changes in these AD proteins. However, decreased TauCter expression was observed in the cortex of Ts65Dn mice transplanted with preoptic cells compared with sham-treated Ts65Dn mice (Fig. 2b).

[0076] To determine whether GnRH neurons play a role in this WT-POA graft-mediated rescue of olfactory and cognitive functions in Ts65Dn mice, neonatal cells from Gnrh::cre;BoNTBloxP-STOP-loxP bigenic mice (a transgenic mouse strain in which vesicle release in GnRH neurons is blunted by selective expression of botulinum neurotoxin B in these cells (BoNTBGnrh)) were administered into the POA of 3v adult Ts65dn males (BoNTBGnrh POA) according to the protocol described above. After a 3-month recovery period, no rescue of olfactory and cognitive functions was observed in these Ts65Dn mice transplanted with BoNTBGnrh-POA cells. Interestingly, acute intraperitoneal GnRH administration (50 μg / kg body weight) 3 months later (i.e., 6 months after transplantation) was found to rescue the olfactory and cognitive deficits in both sham and BoNTBGnrh POA-transplanted Ts65dn mice (data not shown).

[0077] GnRH neurons release the neurohormone in a pulsatile manner; pulsatile GnRH release has been monitored in vivo in both cerebrospinal fluid (Van Vugt et al., 1985) and pituitary portal blood (Clarke and Cummins, 1982). Due to its presence in the CSF, a secretory defect of GnRH, in addition to its effects on reproductive function, may also alter the function of neuronal populations expressing GnRH receptors via diffusive transmission in brain regions involved in cognition in both rodents and humans (Granger et al., 2004; Wilson et al., 2006). As reported above, significant changes in the miRNA-gene micronetwork controlling GnRH expression, a decrease in GnRH immunoreactivity throughout the brain, and changes in LH pulse status strongly suggest that GnRH neuronal function is altered in adult Ts65Dn mice. We next explored the possibility of rescuing cognitive abilities in Ts65dn mice by restoring GnRH pulsation in these mice. To assess this, we implanted osmotic pumps into adult Ts65dn males and administered either a continuous infusion (0.0025 μg per 10 min) of LUTRELEF®, a GnRH peptide used in the clinic to restore fertility in patients with hypogonadotropin-deficient hypogonadotropinemia (Boehm et al., 2015); or a pulsatile infusion of LUTRELEF® (every 3 h; 0.25 μg peak with a 10-min peak duration) using a programmable minipump for 15 days, mimicking the GnRH / LH pulsation reported in wild-type mice (Czieselsky et al., 2016) (Figure 4a). We assessed LH pulse status by serial blood sampling (Fig. 4b-g); we found that pulsatile infusion of LUTRELEF® in Ts65Dn males significantly increased LH pulse frequency and amplitude when compared with vehicle-treated Ts65Dn males (Fig. 4g). Indeed, LH pulse amplitude increased to levels similar to those observed in their WT littermates (Fig. 4g).In contrast, continuous LUTRELEF® infusion blunted the LH pulse in wild-type and Ts65Dn littermates (Fig. 4g). Pulsatile infusion of LUTRELEF® was found to rescue both the ability to discriminate between different odors (Fig. 4h) and cognitive deficits (Fig. 4i) in Ts65Dn males. Continuous infusion of LUTRELEF® had no effect on olfactory and cognitive abilities in Ts65Dn mice, but it appeared to have a significant adverse effect on these tasks in wild-type mice (Fig. 4h, i). These data demonstrate the previously unsuspected importance of the pulsatile nature of GnRH secretion in the beneficial effects of GnRH on cognition, paving the way for the development of new treatment strategies to prevent age-dependent cognitive decline, mobilize cognitive reserve, and thus improve the well-being of patients with neurodevelopmental disorders (e.g., Down syndrome) and neurodegenerative disorders (e.g., Down syndrome and Alzheimer's disease).

[0078] Materials and Methods

[0079] animal

[0080] All mice were housed under specific pathogen-free conditions in a temperature-controlled room (21–22°C) with a 12-h light / dark cycle. The day the litter was born was considered as day 0 of age (postnatal day 0; P0). Animals were weaned on P21 and provided with free access to food and water.

[0081] Ts65Dn (B6EiC3Sn.BLiA-Ts(1716)65Dn / DnJ; stock no. 005252) mice (Ahmed et al., 2012; Reeves et al., 1995; Reinholdt et al., 2011) carry partial trisomy of chromosome 16, the orthologous region of human chromosome 21, and were purchased from Jackson Laboratories (New Harbor, ME, USA). Because the Ts65Dn strain has a wild-type (WT) genetic background for the Pde6b gene, the strain was maintained by mating Ts65Dn trisomy females with Pde6b (C57BL / 6JEiJ × C3Sn.BLiA-Pde6b / DnJ) F1 / J; stock no. 003647) males. This mating system yielded WT and Ts65Dn animals. DicerLoxP / LoxP,Gnrh::Cre (Tg(Gnrh1::Cre)1Dlc), Gnrh::Gfp, and Tg(CAG-BoNT / B,EGFP)U75-56wp / J (iBot) mice were kindly provided by Dr. Brian Harfe (University of Florida, FL) (Harfe et al., 2005), Dr. Catherine Dulac (Howard Hughes Medical Institute, Cambridge, MA) (Yoon et al., 2005), Dr. Daniel J. Spergel (Department of Endocrinology, University of Chicago Medicine, IL) (Spergel et al., 1999), and Dr. Frank Pfrieger (University of Strasbourg) (Slezak et al., 2012), respectively. Mice were genotyped by PCR using the primers listed in Supplementary Table S1. Animal experiments were approved by the Institutional Ethics Committee for the Care and Use of Laboratory Animals of the University of Lille; all experiments were performed in accordance with the guidelines for animal use specified by the European Union Council Directive of 22 September 2010 (2010 / 63 / EU). The sex of the animals used is specified in the text and / or figure legends.The genotype or / and treatment group of the animals were blinded for the study unless morphological or physiological differences were evident enough to be negligible.

[0082] physiological measurements

[0083] Puberty Test. Weaned males were checked daily for balanoplasty (BPS) and urine samples were collected from weaning until P45.

[0084] Weaned female mice were checked daily for vaginal opening, after which vaginal smears were performed daily and analyzed under an inverted microscope to identify specific days of the estrous cycle.

[0085] Fertility index. Female fertility index was calculated from the number of litters per female during the 120-day extended mating period.

[0086] Hormone level measurement. Blood collected from the submandibular vein and trunk was collected in sterile microcentrifuge tubes and kept on ice until centrifugation. Plasma was collected after centrifugation of the blood samples at 3,000 g for 15 minutes at 4°C and stored at -80°C until use.

[0087] LH assay: LH levels were determined by a previously described highly sensitive LH sandwich ELISA (Steyn et al., 2013). 96-well high-affinity binding microplates (Corning) were coated with 50 μL of capture antibody (monoclonal antibody, anti-bovine LH β subunit, 518B7; L. Sibley; University of California, Davis) at a final dilution of 1:1,000 (in 0.1 M Na2CO3 / NaHCO3, pH 9.6) and incubated overnight at 4 °C. The wells were then filled with 200 μL of blocking buffer (1x PBS-T pH 7.4 (0.1 M PBS, 0.05% Tween The plates were incubated with 5% (w / v) skim milk powder in 1x PBS-T (Sigma #P9416) for 2 hours at room temperature (RT). A standard curve was generated using two-fold serial dilutions of mouse LH (reference preparation, AFP-5306A; National Institute of Diabetes and Digestive and Kidney Diseases, National Hormone and Pituitary Program (NIDDK-NHPP)) in 1% (w / v) BSA (Sigma, A9418) in 1x PBS-T. LH standards and blood samples were incubated with 50 μL of detection antibody (rabbit LH antiserum, AFP240580Rb; NIDDK-NHPP) at a final dilution of 1:10,000 for 1.5 hours at RT. Each well containing bound substrate was incubated with 50 μL of horseradish peroxidase-conjugated antibody (goat anti-rabbit; Vector Biosciences, Inc.) at a final dilution of 1:10,000. The plates were incubated with a 100 μL 1-Step Ultra TMB-Elisa Substrate Solution (ThermoFisher Scientific, Cat. No. 34028) for 1.5 hours. After incubation, 100 μL of 1-Step Ultra TMB-Elisa Substrate Solution (ThermoFisher Scientific, Cat. No. 34028) was added to each well and left at room temperature for 10 minutes. The reaction was stopped by adding 50 μL of 3 M HCl to each well, and the absorbance was measured at 450 nm.

[0088] Testosterone assay: Plasma testosterone levels were measured using a commercial ELISA (Demeditec Diagnostics, DEV9911) (Moore et al., 2015) according to the manufacturer's instructions.

[0089] FSH assay: FSH levels were measured using a radioimmunoassay kit provided by the National Institutes of Health (Dr. A.F. Parlow, National Hormone and Peptide Program, Torrance, CA) as previously described in detail (Garcia-Galiano et al., 2012). Hormone measurements were performed in duplicate. Rat FSH-I-9 was labeled with 125I by the chloramine T method, and hormone concentrations were determined using a reference preparation of the FSH-RP-2 standard. The intra- and interassay coefficients of variation were less than 6% and 9% for FSH, respectively. The sensitivity of the assay was 20 pg / tube for FSH. Accuracy of hormone measurements was confirmed by evaluation of rodent serum samples of known concentrations (used as external controls).

[0090] Pulsatile LH measurement

[0091] Adult mice were acclimatized by daily handling. Blood samples (5 μL) were collected from the tail at 10-minute intervals for 2 hours (between 10:00 and 12:00), diluted in 45 μL of 1× PBS-T (0.05%), immediately frozen, and stored at -80°C. LH levels were then determined using a previously described protocol. Pulses were confirmed using DynPeak (Vidal et al., 2012).

[0092] Urine collection and protein analysis

[0093] To assess the diversity of MUP profiles, urine was collected from male mice from weaning (P21) to P45, following either spontaneous voiding upon handling or provocation after gentle pressure on the mouse bladder. Urine was collected in microcentrifuge tubes kept on ice during the collection procedure. All samples were first frozen at -20°C and then kept at -80°C until further processing. For protein analysis, 1 μL of urine was mixed with 1× sample buffer (Invitrogen) and 1× reducing agent (Invitrogen). Samples were boiled for 5 min and electrophoresed in a 4-12% MES D-DS-polyacrylamide gel at 150 V for 75 min according to the protocol provided with the NuPAGE system (Invitrogen). After transfer, proteins were transferred onto a 0.2 μm nitrocellulose membrane (Invitrogen) in the blot module of the NuPAGE system (Invitrogen) at 30 V for 90 min under cold conditions. The membrane was then blocked for 1 hour in blocking buffer (TBS with 0.05% Tween 20 (TBST) and 5% nonfat dry milk) at room temperature and incubated for 48 hours at 4°C with a primary antibody (rabbit polyclonal anti-MUP1, 1:200 dilution, sc-66976, Santa Cruz Biotechnology, INC.) diluted in blocking buffer. Following this, the membrane was washed three times with 1x TBST before incubation for 1 hour at room temperature with a secondary antibody (peroxidase anti-rabbit IgG (H + L), 1:2000 dilution, PI-1000, Vector Laboratories) diluted in blocking buffer. After incubation with the secondary antibody, the membrane was washed three times with 1x TBST. The immunoreaction was developed using an ECL detection kit (NEL101; PerkinElmer, Boston, MA) and scanned using a desktop scanner (Epson Expression 1680 PRO).

[0094] Tissue protein extraction and Western blot analysis

[0095] Both hippocampus and cortex from adult Ts65dn and WT mice were sonicated in 400 μL (for hippocampus) or 800 μL (for cortex) of lysis buffer (10 mM Tris pH 7.4, 10% sucrose, and protease inhibitors (10 mL Complete; 1 pellet for Roche Diagnostics GmbH) and stored at -80°C until use. Protein concentration was determined using a BCA assay (Pierce) followed by dilution with 2× LDS (Life) and addition of reducing agent (Life). Samples were boiled for 10 min at 100°C. Proteins were separated on precast 12% Criterion XT Bis-Tris polyacrylamide gels (Bio-Rad) using 1× MOPS SDS running buffer. Proteins were then transferred to a 0.4 μm nitrocellulose membrane (G&E Healthcare). For low molecular weight proteins, such as the carboxy-terminal fragment of APP (CTF), 1× Tris-Tricine was used. We used 16.5% Criterion XT Tris-Tricine polyacrylamide gels (Bio-Rad) in SDS running buffer. These were transferred onto 0.2 μm nitrocellulose membranes (G&E Healthcare). Molecular weight markers (Novex and Magic Marks, Life Technologies) were used to estimate molecular weight. The membranes were incubated in blocking buffer [TNT (Tris 15 mM pH 8, NaCl 140 mM, 0.05% Tween) and 5% nonfat dry milk or 5% BSA] at room temperature and then incubated overnight at 4°C with the appropriate primary antibody (Supplementary Table S2) diluted in blocking buffer (TNT with 5% milk or BSA). Following this, the membranes were incubated with the corresponding secondary antibody (Supplementary Table S2). Immunoreactions were monitored using a chemiluminescence kit (ECL™, Amersham). The cells were developed using a Sigma-Aldrich Biosciences (Sigma-Aldrich) and visualized using an LAS3000 imaging system (Fujifilm). Results were normalized to GAPDH, and quantification was performed using ImageJ software (Scion Software).

[0096] orchiectomy

[0097] Adult males were subjected to bilateral gonadectomy via the scrotal route under isoflurane anesthesia.

[0098] Behavioral testing

[0099] Habituation / Dishabituation Test. The habituation / dishabituation test was used to assess the ability to distinguish between different odors (Breton-Provencher et al., 2009). Mice were single-housed for 8 days before testing. This olfactory test involved the presentation of acetophenone (00790, Sigma) for habituation and octantalum (05608, Sigma) for dishabituation, or vice versa. Before testing, mice were allowed to explore the open field area and empty odor box for 30 minutes. After this habituation period, mice were presented with one odor over a 1-minute period for four consecutive trials, with a 10-minute intertrial interval to ensure odor substitution. After four consecutive trials, a second odor was presented during the 1-minute trial. Odor (20 μL of a 1:1000 dilution) was administered onto filter paper and placed in a plastic box with holes to avoid direct contact with the odor stimulus. The measurement consisted of recording the total time the mouse spent sniffing the object during the different trials.

[0100] Novel Object Recognition Test. Recognition memory was assessed using a novel object recognition test (Leger et al., 2013). Mice were single-housed for 5 days prior to testing. On day 1, two identical objects (A + A) were placed in the open-field arena on opposite sides of the cage, equidistant from the cage walls. Each mouse was placed within the two objects and allowed to explore them for 15 minutes. Day 2 consisted of two phases: a familiarization phase and a test phase. During the familiarization phase (Trial 1), which lasted 15 minutes, mice explored two other identical objects (B + B). After this phase, mice were returned to their home cages for 1 hour before the test phase began. During the test phase, one object from Trial 1 and a completely new object (B + C) were placed in the open-field area, and mice were allowed to explore them for 5 minutes (Trial 2). The object recognition score, calculated as the time spent exploring the new object (Trial 2) over the total exploration time, is used to represent recognition memory function.

[0101] Y-maze test. Natural spontaneous exploratory behavior and visuospatial short-term memory were tested using a Y-maze (Bridoux et al., 2013; Dellu et al., 2000). The Y-maze consisted of three white wooden arms (24.0 cm × 6.5 cm × 15 cm), elevated 41.0 cm above the floor, and surrounded by visual cues on the walls. Mice were placed in the start arm, facing the end of this arm, and allowed to explore the maze for 10 min while one arm was blocked (novel arm). Mice were subsequently placed in their home cages for 1 h before being allowed to explore all three arms for 5 min. Mouse trajectories were recorded using EthoVision video tracking equipment and software (Noldus Bv, Wageningen, The Netherlands). The time spent in the novel arms and the latency to enter the novel arms were compared between mice.

[0102] Brain tissue dissection

[0103] Mice were euthanized by decapitation, and trunk blood was collected for hormone level analysis. The preoptic area (POA) of the hypothalamus was dissected using Wecker scissors (Moria, France) under binocular magnification and immediately placed on dry ice and stored at -80°C until further processing and assay.

[0104] RNA isolation from POA and quantitative RT-PCR analysis

[0105] Total RNA, including mRNA and miRNA, was extracted using the Ambion mirVana™ miRNA Isolation Kit (Ambion, Inc., CA, USA) by sequential trituration of fragments through 22- and 26-gauge needles. RNA quality and concentration were determined using a spectrophotometer ND-1000 NANODROP 385 (Thermo-scientific). For gene expression analysis, mRNA was reverse transcribed using SuperScript® III reverse transcriptase (Life Technologies). Real-time PCR was performed on an Applied Biosystems 7900HT Fast Real-Time PCR System using exon boundary-specific TaqMan® Gene Expression Assays (Applied Biosystems) (Supplementary Table S3).

[0106] MicroRNA expression analysis was performed using TaqMan specific RT primers and the TaqMan miRNA reverse transcription kit (Applied Biosystems). Quantitative real-time PCR was then performed using predesigned assays for miRNA (Applied Biosystems) (Supplementary Table S3) in an Applied Biosystems 7900HT thermocycler using the manufacturer's recommended cycling conditions. Gene and miRNA expression data were analyzed using SDS 2.4.1 and Data Assist 3.0.1 software (Applied Biosystems).

[0107] Isolation of hypothalamic GnRH neurons using fluorescence-activated cell sorting and quantitative RT-PCR analysis

[0108] The preoptic regions of Gnrh::Gfp and Gnrh::Gfp;Ts65dn mice were microdissected and enzymatically dissociated using a papain dissociation system (Worthington, Lakewood, NJ) to obtain single-cell suspensions. FACS was performed using an EPICS ALTRA cell sorter cytometer device (BD Bioscience). Sorting decisions were based on measuring GFP fluorescence (excitation: 488 nm, 50 mW; detection: GFP bandpass 530 / 30 nm, autofluorescence bandpass 695 / 40 nm) by comparing cell suspensions from Gnrh::Gfp and Gnrh::Gfp;Ts65dn animals (as shown in Supplementary Figure S5). For each animal, GFP-positive and -negative cells were sorted directly into 10 μL of extraction buffer [0.1% Triton® X-100 (Sigma-Aldrich) and 0.4 U / μL RNaseOUT™ (Life Technologies)].

[0109] To analyze gene expression, mRNA obtained from FACS-sorted GnRH neurons was reverse-transcribed using SuperScript® III reverse transcriptase (Life Technologies), and a linear preamplification step was performed using the TaqMan® PreAmp Master Mix Kit protocol (P / N 4366128, Applied Biosystems). Real-time PCR was performed on an Applied Biosystems 7900HT Fast Real-Time PCR System using specific TaqMan® Gene Expression Assays (Applied Biosystems) as previously described (Supplementary Table S3).

[0110] MicroRNA expression analysis of FACS-sorted GnRH neurons was performed using stem-loop RT-PCR-based TaqMan Rodent MicroRNA Arrays (Applied Biosystems). Briefly, miRNAs were reverse transcribed using the TaqMan miRNA Reverse Transcription Kit (Applied Biosystems) in combination with stem-loop megaplex primer pool A according to the manufacturer's instructions. A linear preamplification step was performed using the TaqMan® PreAmp Master Mix Kit protocol (P / N 4366128, Applied Biosystems), and quantitative real-time PCR was performed using TaqMan low-density arrays (Applied Biosystems) in an Applied Biosystems 7900HT thermocycler using the manufacturer's recommended cycling conditions. Gene and miRNA expression data were analyzed using SDS 2.4.1 and Data Assist 3.0.1 software (Applied Biosystems).

[0111] Donor tissue preparation and nerve grafting

[0112] Tissue donors for POA grafts were obtained from postnatal day 2 (P2) WT mice containing GnRH neurons that release GnRH (WT-POA) and Gnrh::cre;BoNTBloxP-STOP-loxP mice containing GnRH neurons that do not release GnRH (BoNTBGnrh-POA).

[0113] The tissue was microdissected and enzymatically dissociated using a papain dissociation system (Worthington, Lakewood, NJ) to obtain a cell suspension in 5 μL of 1× HBSS solution. Two preoptic tissues were used by implantation.

[0114] Adult Ts65dn mice were placed under isoflurane in a stereotaxic frame (Kopf® Instruments, CA), and a burr hole was drilled at the midline, −1.7 mm from bregma, according to the mouse brain atlas (Paxinos and Franklin, 2004). A 25 μL Hamilton syringe (22-gauge needle) was slowly inserted into the 3v (5.6 mm deep into the dura), and 5 μL of each of the different solutions containing WT-POA or BoNTBGnrh-POA explants was administered over 10 min using an infusion pump (KD Scientific, Holliston, MA).

[0115] Under the same conditions, adult 65dn and WT mice were administered with 5 μL of vehicle (HBSS 1×) (sham group).

[0116] Adeno-associated viral vectors and stereotactic injection

[0117] For selective overexpression of the miR-200 family, specifically member miR-200b, in the hypothalamus of adult Ts65dn males, bilateral injections (150 nl or 300 nl total) of scAAV9-EF1a-mmu-miR-200b-eGFP (AAV-miR200b, 2.1 × 10 GC / ml) or scAAV9-EF1a-ctrl-miR-eGFP (AAV-GFP, 2.2 × 10 GC / ml) were administered via a 5 μL Hamilton syringe at a rate of 20 nl / min into the POA (AP: +0.5 mm, ML: ±0.12 mm, DV: −5.3 mm). The needle was left undisturbed for 5 minutes after administration. Both viruses were obtained from Vector Biolabs, and injection coordinates were based on the Paxinos mouse brain atlas (Paxinos and Franklin, 2004).

[0118] Preparation of brains for immunohistochemical analysis

[0119] Neonatal (P0) mice anesthetized on ice, as well as infant (P12), prepubertal (P35), and adult mice anesthetized with 50–100 mg / kg ketamine-HCl and 5–10 mg / kg xylazine-HCl, were transcardially perfused with 2–10 ml of saline, followed by 10–100 ml of 4% paraformaldehyde (PFA), pH 7.4. Brains were collected and fixed in the same fixative for 2 h at 4°C, embedded in OCT embedding medium (Tissue-Tek), frozen on dry ice, and stored at -80°C until cryosectioning.

[0120] Immunohistochemistry and quantification

[0121] Tissues were cryosectioned (Leica cryostat) at 16 μm for P0 and 35 μm (floating sections) for P12, P35, and adult brains unless otherwise indicated.

[0122] Assessment of GnRH protein expression

[0123] Immunohistofluorescence experiments were performed as previously described (Hanchate et al., 2012; Messina et al., 2011). Coronal sections were then washed in 0.1 M PBS and incubated for 60 min in blocking solution (2% goat serum + 0.5% Triton X-100) in 0.1 M PBS. Sections were then incubated in guinea pig anti-GnRH (1:10,000) produced by Dr. Erik Hrabovszky (Institute of Endocrinology and Neurobiology, Institute of Experimental Medicine, Hungarian Academy of Sciences, Budapest, Hungary) (Hrabovszky et al., 2011) (for P0 brains) or rabbit anti-GnRH (1:3,000) [a gift from Professor G. Tramu (National Center for Scientific Research, URA 339, University of Bordeaux I, Talence, France) (Beauvillain and Tramu, 1980)] (for P12, P35, and adult brains) in blocking solution for 48 h at 4°C. After incubation in primary antibodies, sections were rinsed three times with 0.1 M PBS for 10 min each and incubated with Alexa fluor 568-conjugated anti-guinea pig (1:500) or anti-rabbit (1 / 500; Invitrogen A11077) secondary antibodies for 90 min at RT. Sections were then washed, counterstained with Hoechst (1:10,000; Thermo Fisher Scientific Cat# H3569, RRID:AB_2651133) for 3 min, rinsed three times with 0.1 M PBS for 10 min, and mounted with coverslips using Mowiol coverslip mounting solution. Because the GnRH neuron population is highly restricted in the mouse brain, all neurons were visually counted under a microscope in one of two series of brain (P12, P35, and adult) or head (P0) sections. Images were acquired using a Zeiss Axio Imager Z2 ApoTome microscope (Zeiss, Germany).

[0124] Analysis of vGluT or vGluT2 apposition on GnRH neurons

[0125] Coronal sections from P12 and P35 mice were washed three times for 10 min in 0.1 M PBS and incubated for 90 min at RT with blocking solution [0.1 M PBS with 10% normal donkey serum (NDS; Sigma, D9663), 0.25% bovine serum albumin (BSA; Sigma, A9418), 0.3% Triton X-100 (Sigma, T8787)]. Sections were then incubated with rabbit anti-GnRH (1:6,000) [a gift from Professor G. Tramu (National Center for Scientific Research, URA 339, University of Bordeaux I, Talence, France) ( Beauvillain and Tramu, 1980 )] and guinea pig anti-vGaT (1:750, Synaptic Systems, 131 004) or vGluT2 (1:750, Synaptic Systems, 135 404) in blocking solution for 72 h at 4°C. After incubation with the primary antibodies, sections were rinsed three times for 10 min with 0.1 M PBS and incubated with the corresponding secondary antibodies, i.e., Alexa fluor 488-conjugated donkey anti-rabbit (1:400; Life Technologies, Molecular Probes, Invitrogen, A21206) and Alexa fluor 594-conjugated donkey anti-guinea pig (1:400; Jackson Immunoresearch, 706-585-148), in 0.1 M PBS for 90 min at RT. Then, sections were washed three times for 10 min in 0.1 M PBS, incubated with Hoechst (1:10,000; Thermo Fisher Scientific, H3569, RRID:AB_2651133) for 3 min, and subsequently washed three times for 10 min with 0.1 M PBS. Finally, the sections were mounted with coverslips using Mowiol coverslip mounting solution. Images were acquired using an LSM 710 Zeiss upright confocal laser scanning microscope equipped with LSM 710 software (Zeiss, Germany).

[0126] Evaluation of adeno-associated virus vectors

[0127] The coronal sections were then washed with 0.1 M PBS and incubated for 60 min with blocking solution (5% donkey serum + 0.5% Triton X-100 in 0.1 M PBS) and then incubated for 48 h at 4°C with chicken anti-GFP (1:500; Aves Labs, Inc. GFP-1020) and rabbit anti-GnRH (1:3000) [a gift from Professor G. Tramu (National Center for Scientific Research, URA 339, University of Bordeaux I, Talence, France) (Beauvillain and Tramu, 1980)] in blocking solution. Following this, sections were rinsed three times with 0.1 M PBS for 10 minutes each and then incubated with secondary antibodies Alexa fluor 488-conjugated donkey anti-chicken (1:500; Jackson Immuno Research 703-545-155) and Alexa 568-conjugated donkey anti-rabbit (1:500; Invitrogen A10042) for 90 minutes at room temperature. Sections were then washed, counterstained with Hoechst (1:10,000; Thermo Fisher Scientific Cat# H3569, RRID:AB_2651133) for 3 minutes, rinsed three times with 0.1 M PBS for 10 minutes, and mounted with coverslips using Mowiol coverslip mounting solution. Images were acquired using an LSM 710 Zeiss upright confocal laser scanning microscope equipped with LSM 710 software (Zeiss, Germany).

[0128] iDisco

[0129] iDisco is a solvent-based clearing method that renders brain tissue transparent while preserving fluorescence ( Erturk et al., 2012 ; Erturk and Bradke, 2013 ).

[0130] Sample pretreatment with methanol: Samples were washed in PBS (twice for 1 hour) and then incubated in 50% methanol (once for 1 hour), 80% methanol (once for 1 hour), and 100% methanol (twice for 1 hour) in 0.1 M PBS. Samples were then bleached overnight at 4°C in 5% HO in 20% DMSO / methanol (2 ml 30% HO / 2 ml DMSO / 8 ml methanol, ice-cold). Following this, samples were washed in methanol (twice for 1 hour), 20% DMSO / methanol (twice for 1 hour), 80% methanol (once for 1 hour), 50% methanol (once for 1 hour), PBS (once for 1 hour), and finally PBS / 0.2% Triton X-100 (twice for 1 hour) before proceeding to the staining procedure.

[0131] Whole-mount immunostaining: Samples were incubated in 10 ml of blocking solution (PBSGNaT) [1x PBS containing 0.2% gelatin (Sigma), 0.5% Triton X-100 (Sigma-Aldrich), and 0.01% NaAzide (Casoni et al., 2016)] on an adjustable rotator at 37°C for 3 nights. Samples were transferred to 10 ml of PBSGNaT containing primary antibodies (Table S1) and placed on a rotator at 37°C for 7 days. This was followed by six 30-minute washes in PBSGT at RT and a final overnight wash in PBSGT at 4°C. Samples were then incubated in a rotator tube with secondary antibodies (1:400, Alexa 568, Alexa 647) diluted in 10 ml PBSGNaT for 2 days at 37°C. After six washes for 30 min in 0.1 M PBS at RT, samples were stored in PBS at 4° C. in the dark until cleared.

[0132] Tissue clearing: All incubation steps were performed at RT in a fume hood on a tube rotator at 14 rpm, covered with aluminum foil to avoid contact with light. Samples were dehydrated for 1 h in a graded series of methanol (Sigma-Aldrich) diluted in HO (20%, 40%, 60%, 80%, and 100%). This was followed by a 30-40 min delipidation step in 100% dichloromethane (DCM; Sigma-Aldrich). Samples were cleared in dibenzyl ether (DBE; Sigma-Aldrich) for 2 h at RT in the dark with constant agitation. Finally, samples were transferred to fresh DBE and stored in glass tubes in the dark at RT until imaging. We were able to image samples for up to 6 months without any significant loss of fluorescence, as described below.

[0133] Digital image acquisition

[0134] The different immunohistofluorescence experiments described previously were analyzed using one of the microscopes mentioned below, and images were processed using Adobe Photoshop (Adobe Systems, San Jose, CA, RRID:SCR_014199).

[0135] Fluorescence microscope

[0136] Unless otherwise indicated, sections were analyzed using a Zeiss Axio Imager Z2 ApoTome microscope (Zeiss, Germany) equipped with a motorized stage and an AxioCam MRm camera (Zeiss, Germany). Specific beam splitter (BS), excitation (Ex) and emission (Em) wavelengths were used for visualization of green (Alexa 488-BS: 495 nm, Ex: 450 / 490 nm, Em: 500 / 550 nm), red (Alexa 688-BS: 570 nm, Ex: 538 / 562 nm, Em: 570 / 640 nm), far-red (Alexa 647-BS: 660 nm, Ex: 625 / 655 nm, Em: 665 / 715 nm), and nuclear stain (Hoechst-BS: 395 nm, Ex: 335 / 383 nm, Em: 420 / 470 nm). To create photomontages, single-plane images were captured over time for each fluorophore using the MosaiX module of an AxioVision 4.6 system (Zeiss, Germany) and a Zeiss 20x objective (numerical aperture NA = 0.80). High-magnification photomicrographs represent maximum intensity projections derived from a series of triple ApoTome adjacent images collected using the Z-stack module of the AxioVision 4.6 system. All images were captured in a stepwise fashion over a defined z-focus range that corresponds to all visible staining within the section and matches the optimal step size for the corresponding objective and wavelength.

[0137] Confocal imaging

[0138] Sections from the analysis of vGaT and vGluT2 apposition on GnRH neurons were imaged using an LSM710 Zeiss upright confocal laser scanning microscope equipped with LSM710 software. For each GnRH-IR cell, stacks of images spaced 0.25 μm apart were collected using a 100x objective and 2x digital zoom throughout the entire depth of the GnRH-IR neuron. Z-series stacks of images using the 100x objective were generated to estimate the density of vGaT or vGluT2 apposition. Contact was defined as the absence of black pixels between the primary GnRH-IR dendritic spine and the vGaT- or vGluT2-positive terminal. For each image, the number of vGaT- or vGluT2-labeled puncta directly adjacent to the GnRH-IR neuron's soma and dendrites (up to 45 μm along the GnRH primary dendrite) was counted and combined to provide an average value for each cell. Primary GnRH-IR dendrites could not be traced more than 45 μm from the cell body; therefore, we determined the number of vGluT appositions every 15 μm until the dendrites exited the slice. Data are presented as vGluT or vGluT2 appositions / μm.

[0139] Light sheet imaging

[0140] 3D imaging was performed as previously described (Belle et al., 2014). Imaging was performed using an ultramicroscope (LaVision BioTec) with ImspectorPro software (LaVision BioTec). The light sheet was generated by a laser (wavelength 488 or 561 nm, Coherent Sapphire Laser, LaVision BioTec) and two cylindrical lenses. A binocular stereomicroscope (MXV10, Olympus) with a 2× objective lens (MVPLAPO, Olympus) was used at different magnifications (1.6×, 4×, 5×, and 6.3×). The sample was placed in an imaging reservoir made of 100% quartz (LaVision BioTec) filled with DBE and illuminated from the side by laser light. Images were acquired using a PCO Edge SCMOS CCD camera (2,560 × 2,160 pixel size, LaVision BioTec). The step size between each image was fixed at 2 μm.

[0141] Acute GnRH administration

[0142] To test the effects of GnRH on cognitive and olfactory abilities, adult male Ts65Dn mice transplanted with POA explants from iBot mice (65dn+POA-TOX) were treated with GnRH-1 peptide (Genecust) at a dose of 0.05 μg / g BW or vehicle (PBS pH 7.4).

[0143] To test olfactory discrimination ability, animals received a single intraperitoneal (ip) administration of GnRH-1 or vehicle 2 hours before the habituation phase. For the NOR test, on day 1, animals received two ip administrations of GnRH-1 peptide or vehicle. The first administration was given 2 hours before the start of the trial, and the second administration was given 12 hours after the first administration to promote memory consolidation. On day 2, animals received an ip administration 2 hours before the start of the first trial.

[0144] Continuous and pulsed subcutaneous infusion

[0145] Adult mice were implanted using osmotic minipumps (1002, Alzet, USA) to receive a continuous infusion of vehicle (sterile 0.1 M PBS) or LUTRELEF® (0.25 μg / 3 h) (Ferring Pharmaceuticals, Switzerland); or received pulse infusions of vehicle or LUTRELEF® (0.25 μg peak every 3 h for 10 min) using a programmable microinfusion pump (SMP-300, iPRECIO, Japan) to mimic the GnRH / LH pulse reported in WT mice (Czieselsky et al., 2016), and a basal infusion using a lower dose (0.0025 μg / 10 min) for the rest of the time. Pumps were placed under the skin on the backs of the mice. Both olfactory and cognitive deficits were previously confirmed in these animals. One week after surgery, mice were retested to assess their olfactory and cognitive abilities. Two weeks after surgery, repeated tail tip blood sampling was performed (described elsewhere) to assess the LH pulse profile.

[0146] Sample Size and Randomization Statement

[0147] Sample sizes for physiological and neuroanatomical testing, as well as for miRNA and gene expression analysis, were estimated based on previous experience and literature. Mice from at least three different litters from each group were used to test sexual maturity, fertility, and to perform quantitative RT-PCR analysis on cells isolated by FACS, dissection, and immunostaining. No randomization method was used to assign subjects to experimental groups or to collect and process data.

[0148] Presentation of data and statistics

[0149] All statistical analyses were performed using Prism 7 (GraphPad Software), and normality (Shapiro-Wilk test) and variance were assessed where appropriate. Sample sizes were chosen according to standard local practice. Data were compared using unpaired / paired two-tailed Student's t-test, Mann-Whitney U test, or one-way analysis of variance for multiple comparisons. Tukey's post-hoc test was performed where appropriate. The significance level was set at p<0.05. Data are presented as mean ± sem. The number of biologically independent experiments, P values, and degrees of freedom are indicated either in the text or in the figure legends.

[0150] Example 2

[0151] Acute chemogenetic inhibition of GnRH-R-expressing neurons impairs cognitive and olfactory abilities in adult control mice.

[0152] Neuroanatomical results demonstrated that extrahypothalamic GnRH projections are found in brain regions that control cognitive and social behavior. Furthermore, the potential role of GnRH in regulating non-reproductive processes is also consistent with three-dimensional (3D) imaging in solvent clearing (iDISCO) analysis performed by the inventors, which identified GFP-labeled neurons expressing the GnRH receptor (GnRH-R) in the cortex and hippocampus of the mouse brain.

[0153] Interestingly, as shown in Figure 5, when neurons expressing the GnRH receptor (GnRH-R) in the hippocampus of Gnrhr::Cre mice were infected with an inhibitory DREADD viral vector (AAV8-hSYN-DIO-hM4D(Gi)-mCherry) (Figure 5A), a single administration of 200 μL of clozapine-n-oxide (CNO-3 mg / kg) dramatically impaired both cognitive and olfactory abilities in wild-type (wt) mice (Figures 5B and C). Collectively, these data further highlight the intriguing idea that normal cognitive and olfactory functions depend on GnRH action in target regions distant from the hypothalamus, and that the acquired loss of extrahypothalamic GnRH fibers in Ts65Dn mice during postnatal development may play a crucial role in their DS-like phenotype.

[0154] References [Table 1] TIFF0007779739000002.tif255169 TIFF0007779739000003.tif254169 TIFF0007779739000004.tif254169 TIFF0007779739000005.tif248169 TIFF0007779739000006.tif254169 TIFF0007779739000007.tif124169

Claims

1. 1. A pharmaceutical composition for the treatment of cognitive impairment in a patient in need thereof, comprising gonadotropin-releasing hormone (GnRH), wherein the GnRH is administered by pulsatile administration, and the patient has olfactory dysfunction.

2. 1. A pharmaceutical composition for the treatment of cognitive impairment in a patient in need thereof, comprising miR-200 and / or miR-155, wherein the miRNA is administered to the patient to induce pulsatile expression of GnRH, and the patient has olfactory dysfunction.

3. The pharmaceutical composition according to claim 1 or 2, wherein the cognitive disorder is Down's syndrome.

4. The pharmaceutical composition according to claim 1 or 2, wherein the cognitive disorder is Alzheimer's disease.

5. The pharmaceutical composition according to claim 1 or 2, wherein the cognitive disorder is Parkinson's disease.

6. 3. The pharmaceutical composition of claim 1, wherein the cognitive impairment is age-related cognitive decline.

7. The pharmaceutical composition according to any one of claims 1 to 5, wherein the cognitive disorder is in an early stage.

8. The pharmaceutical composition of claim 1 , wherein the patient is male.

9. 9. The pharmaceutical composition of claim 8, wherein the pulse administration corresponds to administration of 25 ng / kg GnRH every 120 minutes.

10. The pharmaceutical composition of claim 1 , wherein the patient is female.

11. 11. The pharmaceutical composition of claim 10, wherein the pulse administration corresponds to administration of 75 ng / kg GnRH every 90 minutes.

12. 2. The pharmaceutical composition of claim 1, wherein the GnRH is gonadorelin.

Citation Information

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