
klotho/Jcl・α-Klotho KO/Jcl Academic Reference List
The klotho/Jcl・α-Klotho KO/Jcl Academic Reference Archive provides a curated collection of scientific publications featuring the klotho-deficient mouse models supplied by CLEA Japan.
These genetically modified models are widely recognized as valuable tools for aging research because they exhibit multiple phenotypes resembling accelerated aging. They have been extensively used to investigate the biological functions of α-Klotho, phosphate and calcium homeostasis, chronic kidney disease, cardiovascular disorders, bone metabolism, pulmonary disease, wound healing, and age-related functional decline.
The references collected on this page demonstrate the broad scientific applications of these models, from the original discovery of the klotho gene to recent studies on regenerative medicine, frailty, and metabolic regulation. Publications are organized chronologically, allowing researchers to follow the evolution of α-Klotho research and its expanding role in biomedical science.
For detailed information on the biological characteristics, availability, and ordering information for klotho/Jcl・α-Klotho KO/Jcl, please visit the corresponding product page.
Research Use Snapshot
- Product type: Genetically modified mouse models for aging and α-Klotho research.
- Typical applications: Aging research, chronic kidney disease, mineral metabolism, cardiovascular biology, bone disorders, pulmonary disease, regenerative medicine, and age-related functional decline.
- Evidence on this page: Publications include studies on α-Klotho biology, phosphate and calcium homeostasis, vascular calcification, osteoporosis, renal disease, pulmonary disorders, wound healing, stem cell biology, and mechanisms of aging.
- How to browse: Explore representative publications by research purpose or browse the complete reference list organized by publication year.
🧬 Aging & Longevity
Why are klotho-deficient mice used in aging research? The publications listed on this page establish the klotho mutant mouse as a model of accelerated aging and examine factors that influence lifespan, frailty, cellular senescence, tissue degeneration, and age-related functional decline.
- Mutation of the mouse klotho gene leads to a syndrome resembling ageing (1997) — see 1997
- The progression of aging in klotho mutant mice can be modified by dietary phosphorus and zinc (2001) — see 2001
- Nω-(carboxymethyl)arginine Accumulates in Glycated Collagen and Klotho-deficient Mouse Skin (2011) — see 2011
- Ablation of the p16(INK4a) tumour suppressor reverses ageing phenotypes of klotho mice (2015) — see 2015
- DPP-4 inhibition with linagliptin ameliorates the progression of premature aging in klotho-/- mice (2017) — see 2017
- Impact of Ninjin’yoeito on frailty and short life in klotho-hypomorphic (kl/kl) mice (2022) — see 2022
🦴 Bone & Mineral Metabolism
How are klotho-deficient mice used in skeletal and mineral metabolism research? The reference list includes studies on osteoblast and osteoclast differentiation, bone mineralization, skeletal microstructure, calcium and phosphate homeostasis, FGF23 signaling, and the mechanical integrity of aging bone.
- Elongation of the epiphyseal trabecular bone in transgenic mice carrying a klotho gene locus mutation that leads to a syndrome resembling aging (1998) — see 1998
- Independent impairment of osteoblast and osteoclast differentiation in klotho mouse exhibiting low-turnover osteopenia (1999) — see 1999
- Klotho converts canonical FGF receptor into a specific receptor for FGF23 (2006) — see 2006
- α-Klotho as a regulator of calcium homeostasis (2007) — see 2007
- Histological and elemental analyses of impaired bone mineralization in klotho-deficient mice (2008) — see 2008
- Altered distribution of bone matrix proteins and defective bone mineralization in klotho-deficient mice (2013) — see 2013
- Bone micro-fragility caused by the mimetic aging processes in α-klotho deficient mice: in situ nanoindentation assessment of dilatational bands (2015) — see 2015
- Histochemical Examination on Periodontal Tissues of Klotho-Deficient Mice Fed With Phosphate-Insufficient Diet (2017) — see 2017
🩺 Kidney & Chronic Kidney Disease
How are klotho-deficient mice used in kidney research? The publications on this page investigate the role of α-Klotho in renal fibrosis, chronic kidney disease, nephrotoxicity, mineral metabolism, and renal protection. These studies have established klotho-deficient mice as an important model for understanding kidney aging and CKD progression.
❤️ Cardiovascular Biology
Applications in cardiovascular and vascular aging research. The publications listed on this page examine endothelial dysfunction, nitric oxide production, vascular calcification, hypertension, and cardiovascular complications associated with α-Klotho deficiency.
🫁 Pulmonary Disease
How are klotho-deficient mice used in pulmonary research? The publications include studies of pulmonary emphysema, chronic obstructive pulmonary disease (COPD), oxidative stress, and lung aging, demonstrating the importance of α-Klotho in maintaining pulmonary structure and function.
🧠 Neurology & Cognitive Function
How are klotho-deficient mice used in neurobiology and cognitive aging research? The publications listed on this page include studies of learning and memory impairment, oxidative stress, and the localization of Klotho protein in the brain and other organs.
🔬 Molecular Biology of α-Klotho
Understanding the molecular and endocrine functions of α-Klotho. These publications describe the structure and expression of the klotho gene, detection of Klotho protein, rescue of mutant phenotypes, enzymatic activity, and the role of α-Klotho in FGF23 signaling and calcium–phosphate homeostasis.
- Structure of the mouse klotho gene and its two transcripts encoding membrane and secreted protein (1998) — see 1998
- Establishment of the anti-Klotho monoclonal antibodies and detection of Klotho protein in kidneys (2000) — see 2000
- Improvement of multiple pathophysiological phenotypes of klotho (kl/kl) mice by adenovirus-mediated expression of the klotho gene (2000) — see 2000
- Klotho functions in a negative regulatory circuit of the vitamin D endocrine system (2003) — see 2003
- Klotho is a novel β-glucuronidase capable of hydrolyzing steroid β-glucuronides (2004) — see 2004
- Klotho converts canonical FGF receptor into a specific receptor for FGF23 (2006) — see 2006
- α-Klotho as a regulator of calcium homeostasis (2007) — see 2007
- Discovery of α-Klotho unveiled new insights into calcium and phosphate homeostasis (2009) — see 2009
📚 Key Publications (Timeline)
Representative publications from the klotho/Jcl・α-Klotho KO/Jcl archive. These studies trace the discovery of the klotho gene, characterization of accelerated aging phenotypes, clarification of α-Klotho molecular function, and expansion into bone, kidney, cardiovascular, pulmonary, neurological, and frailty research.
- Mutation of the mouse klotho gene leads to a syndrome resembling ageing (1997) — see 1997
- Independent impairment of osteoblast and osteoclast differentiation in klotho mouse exhibiting low-turnover osteopenia (1999) — see 1999
- Disruption of the klotho gene causes pulmonary emphysema in mice (2000) — see 2000
- Cognition impairment in the genetic model of aging klotho gene mutant mice: a role of oxidative stress (2003) — see 2003
- Klotho converts canonical FGF receptor into a specific receptor for FGF23 (2006) — see 2006
- α-Klotho as a regulator of calcium homeostasis (2007) — see 2007
- Reduced Klotho expression level in kidney aggravates renal interstitial fibrosis (2012) — see 2012
- Ablation of the p16(INK4a) tumour suppressor reverses ageing phenotypes of klotho mice (2015) — see 2015
- Eicosapentaenoic acid prevents arterial calcification in klotho mutant mice (2017) — see 2017
- Salt Causes Aging-Associated Hypertension via Vascular Wnt5a Under Klotho Deficiency (2020) — see 2020
- Impact of Ninjin’yoeito on frailty and short life in klotho-hypomorphic (kl/kl) mice (2022) — see 2022
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1995
- Kondo K, Nozawa K, Tomita T, Ezaki K
Salt-sensitive hypertension in transgenic mice overexpressing Na (+)-proton exchanger.
Circ Res. 1995; 76(1): 148-53. [PMID: 8001273]
1997
- Kuro-o M, Matsumura Y, Aizawa H, Kawaguchi H, Suga T, Utsugi T, Ohyama Y, Kurabayashi M, Kaname T, Kume E, Iwasaki H, Iida A, Shiraki-Iida T, Nishikawa S, Nagai R, Nabeshima YI.
Mutation of the mouse klotho gene leads to a syndrome resembling ageing.
Nature. 1997; 390: 45-51. [PMID: 9363890]
1998
- Shiraki-Iida T, Aizawa H, Matsumura Y, Sekine S, Iida A, Anazawa H, Nagai R, Kuro-o M, Nabeshima Y.
Structure of the mouse klotho gene and its two transcripts encoding membrane and secreted protein.
FEBS Lett. 1998; 424(1-2): 6-10. [PMID: 9537505]
- 大山 良雄, 宇都木 敏浩, 大野 富雄, 内山 強, 相澤 宏樹, 松村 穣, 伴野 祥一, 河津 捷二, 岡 芳知, 黒尾 誠, 鍋島 陽一, 永井 良三.
老化抑制遺伝子(klotho)欠損マウスにおける糖代謝と膵内分泌機能の検討.
Diabetes Frontier. 1998; 9(3): 363-4.
- 山下照仁, 黒尾 誠, 鍋島陽一, 野田政樹.
早期老化(klotho変異)マウスにおける骨の形態形成異常
実験医学. 1998; 16: 131-5.
- Yamashita T, Nifuji A, Furuya K, Nabeshima Y, Noda M.
Elongation of the epiphyseal trabecular bone in transgenic mice carrying a klotho gene locus mutation that leads to a syndrome resembling aging.
J Endocrinol. 1998; 159(1): 1-8. [PMID: 9795335]
1999
- Kawaguchi H, Manabe N, Miyaura C, Chikuda H, Nakamura K, Kuro-o M.
Independent impairment of osteoblast and osteoclast differentiation in klotho mouse exhibiting low-turnover osteopenia.
J Clin Invest. 1999; 104(3): 229-37. [PMID: 10430604]
- 鍋島 陽一.
個体老化の分子機構.
源流. 1999; 1: 43-50.
2000
- Kato Y, Arakawa E, Kinoshita S, Shirai A, Furuya A, Yamano K, Nakamura K, Iida A, Anazawa H, Koh N, Iwano A, Imura A, Fujimori T, Kuro-o M, Hanai N, Takeshige K, Nabeshima Y.
Establishment of the anti-Klotho monoclonal antibodies and detection of Klotho protein in kidneys.
Biochem Biophys Res Commun. 2000; 267(2): 597-602. [PMID: 10631108]
- Suga T, Kurabayashi M, Sando Y, Ohyama Y, Maeno T, Maeno Y, Aizawa H, Matsumura Y, Kuwaki T, Kuro-O M, Nabeshima Y, Nagai R.
Disruption of the klotho gene causes pulmonary emphysema in mice. Defect in maintenance of pulmonary integrity during postnatal life.
Am J Respir Cell Mol Biol. 2000; 22(1): 26-33. [PMID: 10615062]
- Utsugi T, Ohno T, Ohyama Y, Uchiyama T, Saito Y, Matsumura Y, Aizawa H, Itoh H, Kurabayashi M, Kawazu S, Tomono S, Oka Y, Suga T, Kuro-o M, Nabeshima Y, Nagai R.
Decreased insulin production and increased insulin sensitivity in the klotho mutant mouse, a novel animal model for human aging.
Metabolism. 2000; 49(9): 1118-23. [PMID: 11016890]
- Shiraki-Iida T, Iida A, Nabeshima Y, Anazawa H, Nishikawa S, Noda M, Kuro-o M, Nabeshima Y.
Improvement of multiple pathophysiological phenotypes of klotho (kl/kl) mice by adenovirus-mediated expression of the klotho gene.
J Gene Med. 2000; 2(4): 233-42. [PMID: 10953914]
2001
- Morishita K, Shirai A, Kubota M, Katakura Y, Nabeshima Y, Takeshige K, Kamiya T.
The progression of aging in klotho mutant mice can be modified by dietary phosphorus and zinc.
J Nutr. 2001; 131(12): 3182-8. [PMID: 11739863]
2002
- 鍋島陽一.
"IV.加齢モデル. 1.老化モデルとしてのklotho遺伝子変異マウス". ヒト型モデル動物. 井上 達, 他編.
シュプリンガー・フェアラーク東京. 2002. p.85-94.
- Nakamura T, Saito Y, Ohyama Y, Masuda H, Sumino H, Kuro-o M, Nabeshima Y, Nagai R, Kurabayashi M.
Production of nitric oxide, but not prostacyclin, is reduced in Klotho mice.
Jpn J Pharmacol. 2002; 89(2): 149-56. [PMID: 12120757]
2003
- Nagai T, Yamada K, Kim HC, Kim YS, Noda Y, Imura A, Nabeshima Y, Nabeshima T.
Cognition impairment in the genetic model of aging klotho gene mutant mice: a role of oxidative stress.
FASEB J. 2003; 17(1): 50-2. [PMID: 12475907]
- 永井 拓, 山田 清文, Hyoung-Chun Kim, 野田 幸裕, 鍋島陽一, 鍋島俊隆.
Klotho遺伝子変異マウスの学習障害と酸化ストレス.
日本神経精神薬理学雑誌. 2003; 23: 211-7. [PMID: 14653227]
- Tsujikawa H, Kurotaki Y, Fujimori T, Fukuda K, Nabeshima Y.
Klotho, a gene related to a syndrome resembling human premature aging, functions in a negative regulatory circuit of vitamin D endocrine system.
Mol Endocrinol. 2003; 17(12): 2393-403. [PMID: 14528024]
2004
- Takeshita K, Fujimori T, Kurotaki Y, Honjo H, Tsujikawa H, Yasui K, Lee JK, Kamiya K, Kitaichi K, Yamamoto K, Ito M, Kondo T, Iino S, Inden Y, Hirai M, Murohara T, Kodama I, Nabeshima Y.
Sinoatrial node dysfunction and early unexpected death of mice with a defect of klotho gene expression.
Circulation. 2004; 109(14): 1776-82. [PMID: 15037532]
- Tohyama O, Imura A, Iwano A, Freund JN, Henrissat B, Fujimori T, Nabeshima Y.
Klotho is a novel β-glucuronidase capable of hydrolyzing steroid β-glucuronides.
J Biol Chem. 2004; 279(11): 9777-84. [PMID: 14701853]
- Shimada T, Takeshita Y, Murohara T, Sasaki K, Egami K, Shintani S, Katsuda Y, Ikeda H, Nabeshima Y, Imaizumi T.
Angiogenesis and vasculogenesis are impaired in the precocious-aging klotho mouse.
Circulation. 2004; 110(9): 1148-55. [PMID: 15302783]
- Li SA, Watanabe M, Yamada H, Nagai A, Kinuta M, Takei K.
Immunohistochemical localization of Klotho protein in brain, kidney, and reproductive organs of mice.
Cell Struct Funct. 2004; 29(4): 91-9. [PMID: 15665504]
- Funada Y, Nishimura Y, Yokoyama M.
Imbalance of matrix metalloproteinase-9 and tissue inhibitor of matrix metalloproteinase-1 is associated with pulmonary emphysema in Klotho mice.
Kobe J Med Sci. 2004; 50(3-4): 59-67. [PMID: 15864012]
- 鍋島陽一.
Klotho遺伝子欠損マウス. モデル動物の作製と維持(森脇和郎,山村研一,米川博通編)
(株)エル・アイ・シー, 東京, 938-48, 2004.
2005
- Sato I, Miyado M, Sunohara M.
NADH dehydrogenase activity and expression of mRNA of complex I (ND1, 51kDa, and 75kDa) in heart mitochondria of klotho mouse.
Okajimas Folia Anat Jpn. 2005; 82(2): 49-56. [PMID: 16212276]
- Suzuki H, Amizuka N, Oda K, Li M, Yoshie H, Ohshima H, Noda M, Maeda T.
Histological evidence of the altered distribution of osteocytes and bone matrix synthesis in klotho-deficient mice.
Arch Histol Cytol. 2005; 68(5): 371-81. [PMID: 16505583]
2006
- Suzuki H, Amizuka N, Noda M, Amano O, Maeda T.
Histological and immunohistochemical changes in the submandibular gland in klotho-deficient mice.
Arch Histol Cytol. 2006; 69(2): 119-28. [PMID: 16819151]
- Toyama R, Fujimori T, Nabeshima Y, Itoh Y, Tsuji Y, Osamura RY, Nabeshima Y.
Impaired regulation of gonadotropins leads to the atrophy of the female reproductive system in klotho-deficient mice.
Endocrinology. 2006; 147(1): 120-9. [PMID: 16179415]
- Urakawa I, Yamazaki Y, Shimada T, Iijima K, Hasegawa H, Okawa K, Fujita T, Fukumoto S, Yamashita T.
Klotho converts canonical FGF receptor into a specific receptor for FGF23.
Nature. 2006; 444(7120): 770-4. [PMID:17086194]
2007
- Sato A, Hirai T, Imura A, Kita N, Iwano A, Muro S, Nabeshima Y, Suki B, Mishima M
Morphological mechanism of the development of pulmonary emphysema in klotho mice.
Proc Natl Acad Sci USA. 2007; 104(7): 2361-5. [PMID: 17284608]
- Imura A, Tsuji Y, Murata M, Maeda R, Kubota K, Iwano A, Obuse C, Togashi K, Tominaga M, Kita N, Tomiyama K, Iijima J, Nabeshima Y, Fujioka M, Asato R, Tanaka S, Kojima K, Ito J, Nozaki K, Hashimoto N, Ito T, Nishio T, Uchiyama T, Fujimori T, Nabeshima Y.
α-Klotho as a regulator of calcium homeostasis.
Science. 2007; 316(5831): 1615-8. [PMID: 17569864]
- Segawa H, Yamanaka S, Ohno Y, Onitsuka A, Shiozawa K, Aranami F, Furutani J, Tomoe Y, Ito M, Kuwahata M, Imura A, Nabeshima Y, Miyamoto K.
Correlation between hyperphosphatemia and type II Na-Pi cotransporter activity in klotho mice.
Am J Physiol Renal Physiol. 2007; 292(2): 769-79. [PMID: 16985213]
- 宮本賢一, 瀬川博子, 伊藤美紀子, 辰巳佐和子.
αKlothoとリン代謝.
CLINICAL CALCIUM. 2007; 17(5): 698-703. [PMID: 17470998]
- 鍋島陽一.
カルシウム恒常性制御におけるα-Klothoの機能.
医学のあゆみ. 2007; 222(3): 225-31.
2008
- Suzuki H, Amizuka N, Oda K, Noda M, Ohshima H, Maeda T.
Histological and elemental analyses of impaired bone mineralization in klotho-deficient mice.
J Anat. 2008; 212(3): 275-85. [PMID: 18248363]
- 鍋島陽一.
α-Klotho, FGF23の発見がもたらしたカルシウム・リン制御の新たなコンセプト.
CLINICAL CALCIUM. 2008; 18(7): 923-34. [PMID: 18591743]
- 鍋島陽一.
α-Klothoの分子機能と老化についての一考察.
医学のあゆみ. 2008; 227(8): 574-9.
- Ishii M, Yamaguchi Y, Yamamoto H, Hanaoka Y, Ouchi Y.
Airspace enlargement with airway cell apoptosis in klotho mice: a model of aging lung.
J Gerontol A Biol Sci Med Sci. 2008; 63(12):1289-98. [PMID: 19126841]
2009
- Bai X, Dinghong Q, Miao D, Goltzman D, Karaplis AC.
Klotho ablation converts the biochemical and skeletal alterations in FGF23 (R176Q) transgenic mice to a Klotho-deficient phenotype.
Am J Physiol Endocrinol Metab. 2009; 296(1): E79-88. [PMID: 18984852]
- Nabeshima Y.
Discovery of α-Klotho unveiled new insights into calcium and phosphate homeostasis.
Proc Jpn Acad, Ser B. 2009; 85(3): 125-41. [PMID: 19282648]
2010
- Tomiyama K, Maeda R, Urakawa I, Yamazaki Y, Tanaka T, Ito S, Nabeshima Y, Tomita T, Odori S, Hosoda K, Nakao K, Imura A, Nabeshima Y.
Relevant use of Klotho in FGF19 subfamily signaling system in vivo.
Proc Natl Acad Sci U S A. 2010; 107(4): 1666-71. [PMID: 20080590]
2011
- 坂部 勇, 他.
"32章 老化促進モデル. α-Klothoマウス".
完全版マウス・ラット疾患モデル動物活用ハンドブック. 秋山 徹,他編. 羊土社. 2011. p.510-2.
- Satoko Shimasaki, Midori Kubota, Makiko Yoshitomi, Kyoko Takagi, Kazuma Suda, Katsumi Mera, Yukio Fujiwara, Ryoji Nagai.
Nω-(carboxymethyl)arginine Accumulates in Glycated Collagen and Klotho-deficient Mouse Skin.
ANTI-AGING MEDICINE. 2011; 8(6): 82-7.
- Iida RH, Kanko S, Suga T, Morito M, Yamane A.
Autophagic-lysosomal pathway functions in the masseter and tongue muscles in the klotho mouse, a mouse model for aging.
Mol Cell Biochem. 2011; 348(1-2): 89-98. [PMID: 21082218]
- Amano I, Imaizumi Y, Kaji C, Kojima H, Sawa Y.
Expressionof podoplanin and classical cadherins in salivary gland epithelial cells of klotho-deficient mice.
Acta Histochem Cytochem. 2011; 44(6): 267-76. [PMID: 22282587]
2012
- Takahashi M, Eda A, Fukushima T, Hohjoh H.
Reduction of type IV collagen by upregulated miR-29 in normal elderly mouse and klotho-deficient, senescence-model mouse.
PLoS One. 2012; 7(11): e48974. [PMID: 23139829]
- Sugiura H, Yoshida T, Shiohira S, Kohei J, Mitobe M, Kurosu H, Kuro-o M, Nitta K, Tsuchiya K.
Reduced Klotho expression level in kidney aggravates renal interstitial fibrosis.
Am J Physiol Renal Physiol. 2012; 302(10): 1252-64. [PMID: 22338084]
2013
- Asada N, Katayama Y, Sato M, Minagawa K, Wakahashi K, Kawano H, Kawano Y, Sada A, Ikeda K, Matsui T, Tanimoto M.
Matrix-embedded osteocytes regulate mobilization of hematopoietic stem/progenitor cells.
Cell Stem Cell. 2013 Jun 6; 12 (6):737-47. [PMID: 23746979]
- Kawai M, Kinoshita S, Kimoto A, Hasegawa Y, Miyagawa K, Yamazaki M, Ohata Y, Ozono K, Michigami T.
FGF23 suppresses chondrocyte proliferation in the presence of soluble α-Klotho both in vitro and in vivo.
J Biol Chem. 2013 Jan 25;288(4):2414-27. [PMID: 23235154]
- Inoue S, Sato T, Suzuki-Utsunomiya K, Komori Y, Hozumi K, Chiba T, Yahata T, Nakai K, Inokuchi S.
Sepsis-induced hypercytokinemia and lymphocyte apoptosis in aging-accelerated Klotho knockout mice.
Shock. 2013 Mar;39 (3):311-6. [PMID: 23364432]
- Sasaki M, Hasegawa T, Yamada T, Hongo H, de Freitas PH, Suzuki R, Yamamoto T, Tabata C, Toyosawa S, Yamamoto T, Oda K, Li M, Inoue N, Amizuka N.
Altered distribution of bone matrix proteins and defective bone mineralization in klotho-deficient mice.
Bone. 2013 Nov; 57(1):206-19. [PMID: 23954506]
2014
- Yamashita, K., Yotsuyanagi, T., Yamauchi, M., & Young, D. M.
Klotho Mice: A Novel Wound Model of Aged Skin.
Plastic and Reconstructive Surgery–Global Open, 2(1), e101.
- Maruyama N, Shibata Y, Mochizuki A, Miyazaki T, Inoue T, Maki K.
Age-related degradation of mouse cortical bone: implications for the α-klotho gene responsible for bone mechanical integrity in a series of nanoindentation experiments.
Recent Advances in Structural IntegrityAnalysis - Proceedings of the International Congress (APCF/SIF-2014) Pages 300–304
- Sun Y, Zhou G, Gui T, Shimokado A, Nakanishi M, Oikawa K, Sato F, Muragaki Y.
Elevated serum 1,25(OH)2-vitamin D3 level attenuates renal tubulointerstitial fibrosis induced by unilateral ureteral obstruction in kl/kl mice.
Sci Rep. 2014 Oct 9;4:6563. doi: 10.1038/srep06563. [PMID: 25297969]
2015
- Maruyama N, Shibata Y, Mochizuki A, Yamada A, Maki K, Inoue T, Kamijo R, Miyazaki T.
Bone micro-fragility caused by the mimetic aging processes in α-klotho deficient mice: in situ nanoindentation assessment of dilatational bands.
Biomaterials. 2015 Apr;47:62-71. [PMID: 25682161]
- Sato S, Kawamata Y, Takahashi A, Imai Y, Hanyu A, Okuma A, Takasugi M, Yamakoshi K, Sorimachi H, Kanda H, Ishikawa Y, Sone S, Nishioka Y, Ohtani N, Hara E.
Ablation of the p16(INK4a) tumour suppressor reverses ageing phenotypes of klotho mice.
Nat Commun. 2015 Apr 29;6:7035. doi: 10.1038/ncomms8035. [PMID: 25923845]
2016
- Takenaka T, Inoue T, Miyazaki T, Hayashi M, Suzuki H.
Xeno-Klotho Inhibits Parathyroid Hormone Signaling.
J Bone Miner Res. 2016 Feb;31(2):455-62.[PMID: 26287968]
- Jin J, Jin L, Lim SW, Yang CW.
Klotho Deficiency Aggravates Tacrolimus-Induced Renal Injury via the Phosphatidylinositol 3-Kinase-Akt-Forkhead Box Protein O Pathway.
Am J Nephrol. 2016;43(5):357-65. [PMID: 27174564]
- Yamauchi M, Hirohashi Y, Torigoe T, Matsumoto Y, Yamashita K, Kayama M, Sato N, Yotsuyanagi T.
Wound healing delays in α-Klotho-deficient mice that have skin appearance similar to that in aged humans - Study of delayed wound healing mechanism.
Biochem Biophys Res Commun. 2016 May 13;473(4):845-52. [PMID: 27037022]
2017
- Fujino Y, Minamizaki T, Hayashi I, Kawakami A, Miyaji T, Sakurai K, Yoshioka H, Kozai K, Okada M, Yoshiko Y.
Comparative proteome analysis of wild-type and klotho-knockout mouse kidneys using a combination of MALDI-IMS and LC-MS/MS.
Proteomics Clin Appl. 2017 Mar 8. [PMID: 28276159]
- Nakamura K, Miura D, Saito Y, Yunoki K, Koyama Y, Satoh M, Kondo M, Osawa K, Hatipoglu OF, Miyoshi T, Yoshida M, Morita H, Ito H.
Eicosapentaenoic acid prevents arterial calcification in klotho mutant mice.
PLoS One. 2017 Aug 3;12(8):e0181009.[PMID: 28771600]
- Hasegawa Y, Hayashi K, Takemoto Y, Cheng C, Takane K, Lin B, Komohara Y, Kim-Mitsuyama S.
DPP-4 inhibition with linagliptin ameliorates the progression of premature aging in klotho-/- mice.
Cardiovasc Diabetol. 2017 Dec 1;16(1):154.
- Hikone K, Hasegawa T, Tsuchiya E, Hongo H, Sasaki M, Yamamoto T, Kudo A, Oda K, Haraguchi M, de Freitas PH, Li M, Iida J, Amizuka N.
Histochemical Examination on Periodontal Tissues of Klotho-Deficient Mice Fed With Phosphate-Insufficient Diet.
J Histochem Cytochem. 2017 Apr;65(4):207-221.[PMID: 28122194]
2020
- Keiko Akasaka-Manya, Hiroshi Manya, Satomi Nadanaka, Hiroshi Kitagawa, Yoshitaka Kondo, Akihito Ishigami, Tamao Endo.
Decreased ADAM17 Expression in the Lungs of α-Klotho Reduced Mouse J Biochem.
2020 May 1;167(5):483-493. [PMID: 31951006]
- Wakako Kawarazaki, Risuke Mizuno, Mitsuhiro Nishimoto, Nobuhiro Ayuzawa, Daigoro Hirohama, Kohei Ueda, Fumiko Kawakami-Mori, Shigeyoshi Oba, Takeshi Marumo, Toshiro Fujita.
Salt Causes Aging-Associated Hypertension via Vascular Wnt5a Under Klotho Deficiency.
J Clin Invest. 2020 Jun 29;134431 [PMID: 32597829]
2022
- Amitani H, Chiba S, Amitani M, Michihara S, Takemoto R, Han L, Fujita N, Takahashi R, Inui A.
Impact of Ninjin’yoeito on frailty and short life in klotho-hypomorphic (kl/kl) mice
Front Pharmacol. 2022 Oct 24;13:973897. doi: 10.3389/fphar.2022.973897. eCollection 2022.PMID: 36353482
FAQ
- Q: What is included on this page?
- A: This page provides an academic reference list for klotho/Jcl・α-Klotho KO/Jcl, together with a related product link and an inquiry link.
Q: How are the references organized?- A: References are presented in the original "References by Year" list. You can jump to each year using the year index on this page.
Q: Which years are included in the reference list on this page?- A: The reference list includes publications from 1997 through 2022, covering the discovery of the klotho gene and its subsequent applications in aging, kidney disease, cardiovascular biology, bone metabolism, pulmonary disease, neurobiology, and regenerative research.
Q: Can I browse the same references by research purpose?- A: Yes. The topic-based sections above organize the same publications by research purpose, allowing researchers to quickly explore studies related to aging, bone biology, kidney disease, cardiovascular research, pulmonary disease, neurobiology, and molecular functions of α-Klotho.
Q: Where can I find the product page for klotho/Jcl・α-Klotho KO/Jcl?- A: The product link is provided in the "Related CLEA Japan product: klotho/Jcl・α-Klotho KO/Jcl" section on this page.
Q: How can I contact CLEA Japan about this model?- A: The "Inquiry" section on this page includes a link to the contact form for questions regarding klotho/Jcl・α-Klotho KO/Jcl.


