Alzheimer’s Disease – APP Transgenic Mice
Test putative Alzheimer’s disease therapeutics using APP transgenic mice with amyloid beta plaque deposition and the downstream pathological events
APP Transgenic Mice Key Characteristics
The histopathological hallmarks of Alzheimer’s disease (AD) are extracellular plaques composed of Amyloid Beta (Aβ) and intracellular inclusions of the protein Tau (neurofibrillary tangles). Cleavage of the amyloid precursor protein (APP) leads to the generation of amyloid beta (Aβ) protein fragments.
Mouse models of amyloid pathology, namely APP transgenic mice, (over)express the human APP with familial AD-related mutations. Accordingly, APP transgenic mice recapitulate the Aβ aggregation cascade by expressing higher levels of the toxic Aβ1-40 and Aβ1-42 peptides. The biological and associated behavioural deficits observed in amyloid models make them a highly valuable model of AD, suitable for preclinical efficacy studies.
InnoSer offers unique contract research services using several mouse models of Alzheimer’s disease, including a range of APP transgenic models. APP Transgenic models can be used to study downstream pathological events such as neuroinflammation. As all transgenic models present with amyloid plaques, inflammation and cognitive deficits in different timeframes; the choice of the model ultimately depends on experimental compound’s mechanism of action and your research goals. Therefore, we recommend discussing your study setup in close collaboration with our experts.
✓ Humanized APP (APP-SAA Targeted Replacement) mouse model.
✓ APP[V717I]xTau[P301L] double transgenic mouse model.
Take advantage of InnoSer’s expertise, flexibility, and collaborative approach for your research. Our in-house neurology experts have long-standing experience with modeling AD in vivo and are happy to help guide your decision on choosing the best model fit for your current research goals.
InnoSerの神経学専門家チームは、低分子化合物、ペプチド、酵素、オリゴヌクレオチド、遺伝子治療(ウイルスベクター、例:AAV)、免疫療法(抗体/ワクチン免疫療法)など、複数の治療法タイプに関する豊富な経験を有しています。
あなたのアルツハイマー病研究はここから始まります。
当社の専門的に厳選したマウスモデル比較情報をご活用いただき、データに基づいた迅速な意思決定を実現してください。各種マウスモデルにおける検証データセットを掲載した研究スケジュール例、推奨される測定項目、およびサンプルデータをご覧ください。
APP Transgenic Mice Sample Data

Amyloid mouse models show an impaired cognitive performance during the CognitionWall™ Discrimination learning
This deficit is already apparent at 12 weeks of age, before the appearance of plaques (~26 weeks). At 16 weeks, this deficit in discrimination learning can be rescued by an acute dose of the BACE1 inhibitor LY2886721. Using the CognitionWall™, we developed a one-night automated test to efficiently identify discrimination learning impairments in mice, without time-consuming handling of mice. The CognitionWall™ is a wall with three entrances in front of a food dispenser. Mice are rewarded with a food reward when they choose to pass through one of the three entrances. The rate at which a mouse gains a relative preference for the rewarded entrance is used as a measure of discrimination learning.

BACE1 inhibitors lower Aβ levels in plasma and brain
The number and size of amyloid plaques and associated neuroinflammation can be quantified after immunohistochemical (IHC) staining of brain slices. Aβ levels can be quantified in the brain, cerebrospinal fluid, and blood using ultra-sensitive immunoassays.

ARTE10 mice show progressive Aβ plaques (X04) and astrogliosis
In ARTE10 mice, methoxy-X04-positive amyloid plaque deposition is detected at 6 months (6M) of age, which becomes more pronounced at 10 months of age (10M). This is associated with reactive astrocytes (GFAP) around the plaques.

ARTE10 mice show progressive Aβ plaque (X04) deposition
In ARTE10 mice, methoxy-X04-positive amyloid plaque deposition is detected at 6 months (6M) of age, which becomes more pronounced at 10 months of age (10M).

ARTE10 mice show progressive astrogliosis
In ARTE10 mice, methoxy-X04-positive amyloid plaque deposition is detected at 6 months (6M) of age, which becomes more pronounced at 10 months of age (10M). This is associated with reactive astrocytes (GFAP) around the plaques.

Reactive microglia around plaques in ARTE10 mice
Iba1 (general microglia marker), shows clusters of microglia in ARTE10 mice. CD11B (neuroinflammation-related microglia marker) shows increases signal around plaques. MHC-II (neuroinflammation-related microglia marker) shows increased signal around the plaques.
APP Transgenic Mice Readouts
生物学的指標
以下の生物学的指標を用いて治療法の有効性を検証してください:
- MSD: Plasma, CSF, and brain (e.g., Aβ, cytokines, NfL).
- (Digital) histopathology
- Immunohistochemistry (e.g., Aβ plaques, phosphorylated Tau, microglia & astrocyte activation)
- Immunofluorescence and FISH
あなたの研究を支える人々

ソフィー・カーマンス博士
主任神経科学研究員

トーマス・フォーゲルス博士
主任神経科学研究員
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よくあるご質問
What is the APP/PS1 mouse model?
APP/PS1 mouse models are double-transgenic Alzheimer’s disease mouse models widely used in preclinical research to evaluate the efficacy of novel therapeutics targeting amyloid-β (Aβ) pathology. These models co-express mutant human amyloid precursor protein (APP) together with mutant presenilin-1 (PS1), two genes associated with early-onset familial Alzheimer’s disease.
PS1 mutations alter γ-secretase activity, shifting APP processing toward longer, more aggregation-prone Aβ species—particularly Aβ42. This accelerates amyloid plaque formation in the brain, making APP/PS1 models especially suitable for studying amyloid deposition, neuroinflammation, downstream neuronal injury, and cognition-related endpoints within experimentally feasible timelines.
Because of their robust and reproducible amyloid pathology, APP/PS1 mouse models remain among the most commonly used Alzheimer’s disease models in preclinical efficacy research.
InnoSer frequently performs preclinical efficacy studies in across multiple APP/PS1 mouse models, including APP[V717I]xPS1[A246E] line as well as the widely available ARTE10 APPxPS1 mouse model line.
Although both models display robust amyloid pathology, important differences exist in pathology onset, disease progression, phenotype and optimal study timelines.
These distinctions are critical when selecting the most suitable model for your therapeutic program and are outlined in detail in respective mouse model webpages for your further reference.
Which transgenic APP mouse model should I choose for preclinical efficacy evaluation of my Alzhiemer’s disease-targeting compound?
Selecting the appropriate transgenic APP mouse model depends on your scientific objectives, target pathway, and required disease kinetics. If your program requires rapid proof-of-concept data, early plaque pathology, and integrated pathology–cognition readouts within a short experimental timeline, double transgenic APP/PS1 models are often preferred due to their accelerated amyloid deposition.
In contrast, single transgenic APP models such as the APP[V717I] mouse model may be better suited for studies focused on slower, age-dependent amyloid progression, disease modification, or long-term biomarker evolution.
Beyond pathology onset, practical considerations such as model availability, reproducibility across cohorts, compatibility with behavioral and fluid biomarkers, and historical benchmarking should also guide model selection.
InnoSer’s team routinely advises on these aspects to ensure that each study is fit-for-purpose rather than model-driven.
Do different transgenic APP mouse models differ in amyloid-β species composition?
Yes, due to the presence of familial Alzheimer’s disease mutations in APP and PS1, single transgenic APP as well as the double transgenic APP/PS1 mouse models predominantly generate the more aggregation-prone Aβ42 species, alongside Aβ40. In APP/PS1 models, mutant presenilin-1 shifts γ-secretase activity toward increased Aβ42 production, resulting in a markedly elevated Aβ42/Aβ40 ratio and earlier plaque formation compared with single APP models.
In addition to canonical Aβ species, pyroglutamate-modified Aβ (AβpE3–42), a highly pathogenic and aggregation-prone form detected in human Alzheimer’s disease, has also been identified in APPxPS1 models. The presence of these clinically relevant Aβ species enhances the translational value of these models for evaluating amyloid-lowering and plaque-modifying therapies.
InnoSer’s expert scientific team has performed multiple validation studies, quantifying the levels of amyloid beta species including both soluble and insoluble forms.
Can cerebral amyloid angiopathy (CAA) be studied in transgenic APPxPS1 mouse models?
Yes, cerebral amyloid angiopathy (CAA) has been described in multiple APPxPS1 mouse models, including in the ARTE10 line (Willuweit et al. 2009) as well as InnoSer’s APPxPS1 line.
CAA is a common and clinically relevant cerebrovascular pathology characterized by the accumulation of Aβ peptides within the walls of cerebral blood vessels. CAA is present in a substantial proportion of Alzheimer’s disease (AD) patients and is increasingly recognized as a key contributor to vascular dysfunction, impaired cerebral blood flow, blood–brain barrier disruption, and intracerebral haemorrhage.
In recent years, interest in CAA has grown markedly as clinical trial outcomes have highlighted vascular amyloid as a potential driver of treatment-related adverse events, including amyloid-related imaging abnormalities (ARIA).
Consequently, CAA has emerged as an important target for mechanistic studies and for the preclinical evaluation of anti-amyloid therapies, particularly immunotherapies and approaches aimed at improving vascular amyloid clearance.
Do APP/PS1 mouse models show amyloid beta induced Tau pathology?
While APPxPS1 mice develop robust amyloid pathology and dystrophic neurites containing hyperphosphorylated murine tau, they do not recapitulate full neurofibrillary tangle pathology.
This absence of overt tangle pathology is consistent with other APP/PS1 transgenic mouse models. Amyloid-only models robustly reproduce cerebral beta amyloidosis but do not recapitulate the full spectrum of Alzheimer’s disease encompassing tau pathology. To model both amyloid plaques and neurofibrillary tangles in vivo, the incorporation of mutant human tau is required.
Therefore, for therapies targeting combined amyloid-and-tau disease modification, we recommend the APP[V717I]xTau[P301S] mouse model, which recapitulates both extracellular amyloid plaques and progressive tau pathology, providing a more complete Alzheimer’s disease phenotype.
Learn more about InnoSer’s combined amyloid and tau mouse model here.
InnoSerが提供するアルツハイマー病モデルの種類

アミロイド(APP/AB)トランスジェニックマウスモデル
InnoSerは、アルツハイマー病(AD)のプラーク病理を再現する複数の異なるトランスジェニックアミロイドモデルを用いた前臨床研究サービスを提供しています。

トランスジェニックタウマウスモデル
InnoSerは、複数の異なるトランスジェニックタウモデルを用いた独自の研究サービスを提供しており、これらはアルツハイマー病(AD)のタウ神経原線維変化病理を再現します。

タウタンパク質の導入および拡散を伴うマウスモデル
InnoSerはAD脳抽出物注入モデルを採用し、タウ病理の播種と拡散を再現するトランスレーショナルモデルによる独自の非臨床サービスを提供します。

インビトロ神経学アッセイ
リード候補化合物をスクリーニングするには InnoSerの in vitro神経学アッセイを用いてリード候補化合物をスクリーニングし、確信を持って前臨床段階のin vivo研究へ進める
InnoSer社の利用可能なアルツハイマー病マウスモデル

PS19トランスジェニックマウスモデル
前臨床研究で最も広く用いられているマウスモデルの1つを活用し、タウ病変を標的とする化合物の有効性を評価してください
![APP[V717I]マウスモデル](https://www.innoserlaboratories.com/wp-content/uploads/2026/05/APPV717I-mouse-model.png)
APP[V717I]マウスモデル

Tau[P301S]マウスモデル
再現性が高く、進行性のタウ病理を示すInnoSer独自のTau[P301S]マウスモデルを活用し、迅速かつ意思決定主導型の非臨床有効性試験を実施する
![APP[V717I] × PS1[A246E] マウスモデル](https://www.innoserlaboratories.com/wp-content/uploads/2026/05/APPV717I-x-PS1A246E-mouse-model.png)
APP[V717I] × PS1[A246E] マウスモデル
早期発症型アミロイドーシスを呈するトランスジェニックAPPxPS1アルツハイマー病モデルを用いて、アミロイドβの蓄積、神経炎症、および認知機能障害を標的とする治療法の有効性を検証する
![Tau[P301L]マウスモデル](https://www.innoserlaboratories.com/wp-content/uploads/2026/05/TauP301L-Mouse-Model.png)
Tau[P301L]マウスモデル
進行性で、病理学的特徴が十分に解明されているInnoSer社のTau[P301L]マウスモデルを活用し、メカニズム主導型の非臨床有効性試験を実施する

トランスジェニックAPP×PS1 ARTE10マウスモデル
ARTE10マウスモデルに見られる広範なアミロイドβ病変を活用し、確固たる前臨床有効性試験を実施することで、アミロイド低減治療プログラムを推進する
![APP[V717I] × Tau[P301S] マウスモデル、欧州神経学分野のCRO専門家](https://www.innoserlaboratories.com/wp-content/uploads/2026/05/APPV717I-x-TauP301S-mouse-model.png)
APP[V717I] × Tau[P301S] マウスモデル
E多標的治療薬の評価を InnoSerの 複合 APPxTau 疾患 モデル
InnoSerの最新研究を発見する
AAALAC認定
InnoSerはAAALAC認証を取得し、責任ある動物ケアと利用への取り組みを実証しています。AAALAC Internationalは、自主的な認証および評価プログラムを通じて科学における動物の適切な扱いを推進する非営利組織です。InnoSerのオランダおよびベルギー施設は、それぞれ2016年および2020年よりAAALAC認証を取得しています。AAALAC認証プログラムの詳細はこちらをご覧ください。
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動物福祉
3R原則は、政策や規制の変更から新技術・手法の開発と普及に至るまで、あらゆる分野に影響を及ぼします。このためInnoSerは、これらのプロセスに対する継続的な取り組みと監視を実施しています。当社が実践する手順は、動物実験の代替・削減・改善を最大限に実現し、研究および医薬品開発におけるこれらの原則への取り組みを促進します。
info@innoserlaboratories.com

![Cognitive profiling in the APP[V717I]xTau[P301S] mouse model](https://www.innoserlaboratories.com/wp-content/uploads/2026/07/Figure-1-MWM.png)
![トランスレーショナル神経科学:Tau[P301S]を保有する雌マウスと雄マウスの包括的な縦断的プロファイリング](https://www.innoserlaboratories.com/wp-content/uploads/2026/06/Female-TauP301S-mice-show-early-spontaneous-hyperactivity-in-automated-home-cages-PhenoTyperTM-229375_1080x323.png)
