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在庫・価格 : 2024年04月30日 16時17分 現在

商品名 商品コード メーカー 包装 価格 在庫 リスト
Creatinine, Serum, Detection Kit, Colorimetric, DetectX (4×96well)
データシート
KB02-H2 ARBアーバーアッセイズ
Arbor Assays LLC
1 kit ¥102,000
(未発注)
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在庫・価格 : 2024年04月30日 16時17分 現在

Creatinine, Serum, Detection Kit, Colorimetric, DetectX (4×96well)

  • 商品コード:KB02-H2
  • メーカー:ARB
  • 包装:1kit
  • 価格: ¥102,000
  • 在庫:無(未発注)
使用文献
No. 文献情報 備考 参照
1 01 May 2014 - Integrin-linked kinase regulates tubular aquaporin-2 content and intracellular location: a link between the extracellular matrix and water reabsorption

PubMed
2 04 April 2014 - Aspirin-triggered Resolvin D1 down-regulates inflammatory responses and protects against endotoxin-induced acute kidney injury

PubMed
3 08 January 2014 - Chronic ethanol ingestion induces oxidative kidney injury through taurine-inhibitable inflammation

PubMed
4 26 December 2013 - Patent: COMPOSITION FOR LUPUS NEPHRITIS AND METHODS OF MAKING AND USING THE SAME

PubMed
5 31 October 2013 - Laquinimod delays and suppresses nephritis in lupus-prone mice and affects both myeloid and lymphoid immune cells

PubMed
6 27 October 2012 - Stem Cell Transplantation Increases Antioxidant Effects in Diabetic Mice

PubMed
7 Yuan Q et al. PKN1 Directs Polarized RAB21 Vesicle Trafficking via RPH3A and Is Important for Neutrophil Adhesion and Ischemia-Reperfusion Injury. Cell Rep 2017 Jun;19(12):2586-2597
Yuan Q et al
2017/01/01
PubMed
8 C. Latchoumycandane, et al., Chronic ethanol ingestion induces oxidative kidney injury through taurine-inhibitable inflammation., Free Radic Biol Med., 2014

PubMed
9 C. T. Banek, et al., Targeted afferent renal denervation reduces arterial pressure but not renal inflammation in established DOCA-salt hypertension in the rat., American Journal of Physiology-Regulatory Integrative and Comparative Physiology., 2018

PubMed
10 B. L. Riser, et al., Treatment with the Matricellular Protein CCN3 Blocks and/or Reverses Fibrosis Development in Obesity with Diabetic Nephropathy., American Journal of Pathology., 2014

PubMed
11 V. Cantaluppi, et al., Endothelial progenitor cell-derived extracellular vesicles protect from complement-mediated mesangial injury in experimental anti-Thy1.1 glomerulonephritis., Nephrology Dialysis Transplantation., 2015

PubMed
12 J. L. Cano-Pe単alver, et al., Integrin-linked kinase regulates tubular aquaporin-2 content and intracellular location: a link between the extracellular matrix and water reabsorption., Faseb Journal., 2014

PubMed
13 H. R. Jang, et al., Aging has small effects on initial ischemic acute kidney injury development despite changing intrarenal immunologic micromilieu in mice., American Journal of Physiology-Renal Physiology., 2016

PubMed
14 N. Bednarsek, et al., El Nino-Related Thermal Stress Coupled With Upwelling-Related Ocean Acidification Negatively Impacts Cellular to Population-Level Responses in Pteropods Along the California Current System With Implications for Increased Bioenergetic

PubMed
15 J. Chen, et al., Aspirin-triggered resolvin D1 down-regulates inflammatory responses and protects against endotoxin-induced acute kidney injury., Toxicology and Applied Pharmacology., 2014

PubMed
16 H. Y. Xie, et al., Tubular epithelial C1orf54 mediates protection and recovery from acute kidney injury., Journal of Cellular and Molecular Medicine., 2018

PubMed
17 J. A. Call, et al., Muscle-derived extracellular superoxide dismutase inhibits endothelial activation and protects against multiple organ dysfunction syndrome in mice., Free Radical Biology and Medicine., 2017

PubMed
18 J. Y. Yoo, et al., LPS-Induced Acute Kidney Injury Is Mediated by Nox4-SH3YL1., Cell Reports., 2020

PubMed
19 P. Zhou, et al., NCOA2 coordinates with the transcriptional KAT2B-NF-kappaB partner to trigger inflammation response in acute kidney injury., Gene., 2022

PubMed
20 J. Wen, et al., Cognitive impairment persists at least 1 year after juvenile rats are treated with methotrexate., Neuropharmacology., 2022

PubMed
21 C. Dunker, et al., Rapid proliferation due to better metabolic adaptation results in full virulence of a filament-deficient Candida albicans strain., Nature Communications., 2021

PubMed
22 J. Homolova, et al., Plasma Concentrations of Extracellular DNA in Acute Kidney Injury., Diagnostics., 2020

PubMed
23 A. Jancuska, et al., Dynamics of Plasma and Urinary Extracellular DNA in Acute Kidney Injury., Int J Mol Sci., 2022

PubMed
24 M. Hatem-Vaquero, et al., Integrin linked kinase regulates the transcription of AQP2 by NFATC3., Biochimica Et Biophysica Acta-Gene Regulatory Mechanisms., 2017

PubMed
25 T. Song, et al., Exogenous pericyte delivery protects the mouse kidney from chronic ischemic injury., Am J Physiol Renal Physiol., 2022

PubMed
26 D. Kim, et al., Combined Therapy of Low-Dose Angiotensin Receptor-Neprilysin Inhibitor and Sodium-Glucose Cotransporter-2 Inhibitor Prevents Doxorubicin-Induced Cardiac Dysfunction in Rodent Model with Minimal Adverse Effects., Pharmaceutics., 2022

PubMed
27 D. Hu, et al., Inhibition of colorectal cancer tumorigenesis by ursolic acid and doxorubicin is mediated by targeting the Akt signaling pathway and activating the Hippo signaling pathway., Mol Med Rep., 2023

PubMed
28 Q. Meng, et al., GTS-21, a selective alpha7 nicotinic acetylcholine receptor agonist, ameliorates diabetic nephropathy in Lepr(db/db) mice., Sci Rep., 2022

PubMed
29 S. H. Chin, et al., Opposing Effects of Reduced Kidney Mass on Liver and Skeletal Muscle Insulin Sensitivity in Obese Mice., Diabetes., 2015

PubMed
30 M. A. Aziz, et al., Hyperuricaemia and Inflammatory Markers in Patients with Chronic Kidney Disease., IJDDT., 2021

PubMed
31 G. D. Hyde, et al., Axl Tyrosine Kinase Protects against Tubulo-Interstitial Apoptosis and Progression of Renal Failure in a Murine Model of Chronic Kidney Disease and Hyperphosphataemia., Plos One., 2014

PubMed
32 C. C. Xie, et al., Therapeutic Benefits of Delayed Lithium Administration in the Neonatal Rat after Cerebral Hypoxia-Ischemia., Plos One., 2014

PubMed
33 B. Y. Jeong, et al., Novel Plasminogen Activator Inhibitor-1 Inhibitors Prevent Diabetic Kidney Injury in a Mouse Model., Plos One., 2016

PubMed
34 P. Zhang, et al., Discovery of Potential Biomarkers with Dose- and Time-Dependence in Cisplatin-Induced Nephrotoxicity Using Metabolomics Integrated with a Principal Component-Based Area Calculation Strategy., Chemical Research in Toxicology., 2016

PubMed
35 Q. Y. Yuan, et al., PKN1 Directs Polarized RAB21 Vesicle Trafficking via RPH3A and Is Important for Neutrophil Adhesion and Ischemia-Reperfusion Injury., Cell Reports., 2017

PubMed
36 M. Li, et al., Stem cell transplantation increases antioxidant effects in diabetic mice., Int J Biol Sci., 2012

PubMed
37 K. Zhou, et al., Lithium protects hippocampal progenitors, cognitive performance and hypothalamus-pituitary function after irradiation to the juvenile rat brain., Oncotarget., 2017

PubMed
38 K. Jaworska, et al., Both PD-1 Ligands Protect the Kidney from Ischemia Reperfusion Injury., Journal of Immunology., 2015

PubMed
39 L. Scarfe, et al., Measures of kidney function by minimally invasive techniques correlate with histological glomerular damage in SCID mice with adriamycin-induced nephropathy., Scientific Reports., 2015

PubMed
40 K. Inoki, et al., mTORC1 activation in podocytes is a critical step in the development of diabetic nephropathy in mice., J Clin Invest., 2011

PubMed
41 S. Raychaudhuri, et al., A rare penetrant mutation in CFH confers high risk of age-related macular degeneration., Nat Genet., 2011

PubMed
42 S. K. Norton, et al., Epoxyeicosatrienoic acids are involved in the C(70) fullerene derivative-induced control of allergic asthma., J Allergy Clin Immunol., 2012

PubMed
43 J. H. Park, et al., Human umbilical cord blood-derived mesenchymal stem cells prevent diabetic renal injury through paracrine action., Diabetes Res Clin Pract., 2012

PubMed
44 D. M. Small, et al., N-acetyl-cysteine increases cellular dysfunction in progressive chronic kidney damage after acute kidney injury by dampening endogenous antioxidant responses., American Journal of Physiology-Renal Physiology., 2018

PubMed
45 D. Sun, et al., Experimental coronary artery stenosis accelerates kidney damage in renovascular hypertensive swine., Kidney International., 2015

PubMed
46 U. P. Okorji, et al., A semi-synthetic derivative of artemisinin, artesunate inhibits prostaglandin E2 production in LPS/IFN粒-activated BV2 microglia., Bioorganic & Medicinal Chemistry., 2014

PubMed
47 R. Miyakawa, et al., Comparative proteomic analysis of renal proteins from IgA nephropathy model mice and control mice., Clinical and Experimental Nephrology., 2020

PubMed
48 M. Asgari, et al., Interval training and Crataegus persica ameliorate diabetic nephropathy via miR-126/Nrf-2 mediated inhibition of stress oxidative in rats with diabetes after myocardial ischemia-reperfusion injury., Biomed Pharmacother., 2022

PubMed
49 I. Hwang, et al., Peroxiredoxin 3 deficiency accelerates chronic kidney injury in mice through interactions between macrophages and tubular epithelial cells., Free Radical Biology and Medicine., 2019

PubMed
50 A. Almilaibary, et al., Fagonia indica attenuates chromium-induced nephrotoxicity via antioxidant and anti-inflammatory activities in mice., Heliyon., 2022

PubMed
51 F. A. Valentijn, et al., Cellular communication network 2 (connective tissue growth factor) aggravates acute DNA damage and subsequent DNA damage response-senescence-fibrosis following kidney ischemia reperfusion injury., Kidney Int., 2022

PubMed
52 S. R. Kim, et al., Increased renal cellular senescence in murine high-fat diet: effect of the senolytic drug quercetin., Translational Research., 2019

PubMed
53 D. Dorotea, et al., Pan-Src kinase inhibitor treatment attenuates diabetic kidney injury via inhibition of Fyn kinase-mediated endoplasmic reticulum stress., Exp Mol Med., 2022

PubMed
54 N. Klomjit, et al., Effects of obesity on reparative function of human adipose tissue-derived mesenchymal stem cells on ischemic murine kidneys., Int J Obes (Lond)., 2022

PubMed
55 K. Kulkarni, et al., Angiotensin II type 2 receptor activation preserves megalin in the kidney and prevents proteinuria in high salt diet fed rats., Sci Rep., 2023

PubMed
56 B. W. Kim, et al., 15-Hydroxyprostaglandin dehydrogenase inhibitor prevents contrast-induced acute kidney injury., Renal Failure., 2021

PubMed
57 Y. Zhao, et al., Mesenchymal Stem/Stromal Cells and their Extracellular Vesicle Progeny Decrease Injury in Poststenotic Swine Kidney Through Different Mechanisms., Stem Cells and Development., 2020

PubMed
58 M. J. Uddin, et al., CO-Releasing Molecule-2 Prevents Acute Kidney Injury through Suppression of ROS-Fyn-ER Stress Signaling in Mouse Model., Oxidative Medicine and Cellular Longevity., 2021

PubMed
59 W. X. Zhang, et al., TIGIT modulates sepsis-induced immune dysregulation in mice with preexisting malignancy., Jci Insight., 2021

PubMed
60 S. F. Ofori-Acquah, et al., Hemopexin deficiency promotes acute kidney injury in sickle cell disease., Blood., 2020

PubMed
61 R. Mortuza, et al., High glucose induced alteration of SIRTs in endothelial cells causes rapid aging in a p300 and FOXO regulated pathway., PLoS One., 2013

PubMed
62 M. Akatsuka, et al., Recombinant human soluble thrombomodulin is associated with attenuation of sepsis-induced renal impairment by inhibition of extracellular histone release., Plos One., 2020

PubMed
63 M. Hashimoto, et al., Effects of CREG1 on Age-Associated Metabolic Phenotypes and Renal Senescence in Mice., International Journal of Molecular Sciences., 2021

PubMed
64 M. J. Uddin, et al., Carbon monoxide releasing molecule-2 protects mice against acute kidney injury through inhibition of ER stress., Korean Journal of Physiology & Pharmacology., 2018

PubMed
65 T. H. Neder, et al., Endothelin receptors in renal interstitial cells do not contribute to the development of fibrosis during experimental kidney disease., Pflugers Archiv-European Journal of Physiology., 2021

PubMed
66 Y. A. Hong, et al., Resveratrol Ameliorates Contrast Induced Nephropathy Through the Activation of SIRT1-PGC-1 alpha-Foxo1 Signaling in Mice., Kidney & Blood Pressure Research., 2017

PubMed
67 X. Y. Zou, et al., Renal scattered tubular-like cells confer protective effects in the stenotic murine kidney mediated by release of extracellular vesicles., Scientific Reports., 2018

PubMed
68 K. Lee, et al., Repair phase modeling of ischemic acute kidney injury: recovery vs. transition to chronic kidney disease., Am J Transl Res., 2022

PubMed
69 H. P. Guo, et al., Kidney failure, arterial hypertension and left ventricular hypertrophy in rats with loss of function mutation of SOD3., Free Radical Biology and Medicine., 2020

PubMed
70 S. R. Kim, et al., Transplanted senescent renal scattered tubular-like cells induce injury in the mouse kidney., American Journal of Physiology-Renal Physiology., 2020

PubMed
71 L. Q. Li, et al., Aberrant Activation of Notch1 Signaling in Glomerular Endothelium Induces Albuminuria., Circulation Research., 2021

PubMed
72 J. S. Forsse, et al., The Effect of Acute Aerobic Exercise on Biomarkers of Renal Health and Filtration in Moderate-CKD., Res Q Exerc Sport., 2023

PubMed
73 D. T. Rodgers, et al., The Parasitic Worm Product ES-62 Targets Myeloid Differentiation Factor 88-Dependent Effector Mechanisms to Suppress Antinuclear Antibody Production and Proteinuria in MRL/ Mice., Arthritis & Rheumatology., 2015

PubMed
74 S. Jiang, et al., Dojuksan ameliorates tubulointerstitial fibrosis through irisin-mediated muscle-kidney crosstalk., Phytomedicine., 2021

PubMed
75 A. T. Williams, et al., Balance between oxygen transport and blood rheology during resuscitation from hemorrhagic shock with polymerized bovine hemoglobin., Journal of Applied Physiology., 2020

PubMed
76 A. Kovalcikova, et al., Salivary creatinine and urea are higher in an experimental model of acute but not chronic renal disease., Plos One., 2018

PubMed
  • No.: 1
  • 文献情報:
    01 May 2014 - Integrin-linked kinase regulates tubular aquaporin-2 content and intracellular location: a link between the extracellular matrix and water reabsorption

  • 備考:
  • 参照:
    PubMed
  • No.: 2
  • 文献情報:
    04 April 2014 - Aspirin-triggered Resolvin D1 down-regulates inflammatory responses and protects against endotoxin-induced acute kidney injury

  • 備考:
  • 参照:
    PubMed
  • No.: 3
  • 文献情報:
    08 January 2014 - Chronic ethanol ingestion induces oxidative kidney injury through taurine-inhibitable inflammation

  • 備考:
  • 参照:
    PubMed
  • No.: 4
  • 文献情報:
    26 December 2013 - Patent: COMPOSITION FOR LUPUS NEPHRITIS AND METHODS OF MAKING AND USING THE SAME

  • 備考:
  • 参照:
    PubMed
  • No.: 5
  • 文献情報:
    31 October 2013 - Laquinimod delays and suppresses nephritis in lupus-prone mice and affects both myeloid and lymphoid immune cells

  • 備考:
  • 参照:
    PubMed
  • No.: 6
  • 文献情報:
    27 October 2012 - Stem Cell Transplantation Increases Antioxidant Effects in Diabetic Mice

  • 備考:
  • 参照:
    PubMed
  • No.: 7
  • 文献情報:
    Yuan Q et al. PKN1 Directs Polarized RAB21 Vesicle Trafficking via RPH3A and Is Important for Neutrophil Adhesion and Ischemia-Reperfusion Injury. Cell Rep 2017 Jun;19(12):2586-2597
    Yuan Q et al
    2017/01/01
  • 備考:
  • 参照:
    PubMed
  • No.: 8
  • 文献情報:
    C. Latchoumycandane, et al., Chronic ethanol ingestion induces oxidative kidney injury through taurine-inhibitable inflammation., Free Radic Biol Med., 2014

  • 備考:
  • 参照:
    PubMed
  • No.: 9
  • 文献情報:
    C. T. Banek, et al., Targeted afferent renal denervation reduces arterial pressure but not renal inflammation in established DOCA-salt hypertension in the rat., American Journal of Physiology-Regulatory Integrative and Comparative Physiology., 2018

  • 備考:
  • 参照:
    PubMed
  • No.: 10
  • 文献情報:
    B. L. Riser, et al., Treatment with the Matricellular Protein CCN3 Blocks and/or Reverses Fibrosis Development in Obesity with Diabetic Nephropathy., American Journal of Pathology., 2014

  • 備考:
  • 参照:
    PubMed
  • No.: 11
  • 文献情報:
    V. Cantaluppi, et al., Endothelial progenitor cell-derived extracellular vesicles protect from complement-mediated mesangial injury in experimental anti-Thy1.1 glomerulonephritis., Nephrology Dialysis Transplantation., 2015

  • 備考:
  • 参照:
    PubMed
  • No.: 12
  • 文献情報:
    J. L. Cano-Pe単alver, et al., Integrin-linked kinase regulates tubular aquaporin-2 content and intracellular location: a link between the extracellular matrix and water reabsorption., Faseb Journal., 2014

  • 備考:
  • 参照:
    PubMed
  • No.: 13
  • 文献情報:
    H. R. Jang, et al., Aging has small effects on initial ischemic acute kidney injury development despite changing intrarenal immunologic micromilieu in mice., American Journal of Physiology-Renal Physiology., 2016

  • 備考:
  • 参照:
    PubMed
  • No.: 14
  • 文献情報:
    N. Bednarsek, et al., El Nino-Related Thermal Stress Coupled With Upwelling-Related Ocean Acidification Negatively Impacts Cellular to Population-Level Responses in Pteropods Along the California Current System With Implications for Increased Bioenergetic

  • 備考:
  • 参照:
    PubMed
  • No.: 15
  • 文献情報:
    J. Chen, et al., Aspirin-triggered resolvin D1 down-regulates inflammatory responses and protects against endotoxin-induced acute kidney injury., Toxicology and Applied Pharmacology., 2014

  • 備考:
  • 参照:
    PubMed
  • No.: 16
  • 文献情報:
    H. Y. Xie, et al., Tubular epithelial C1orf54 mediates protection and recovery from acute kidney injury., Journal of Cellular and Molecular Medicine., 2018

  • 備考:
  • 参照:
    PubMed
  • No.: 17
  • 文献情報:
    J. A. Call, et al., Muscle-derived extracellular superoxide dismutase inhibits endothelial activation and protects against multiple organ dysfunction syndrome in mice., Free Radical Biology and Medicine., 2017

  • 備考:
  • 参照:
    PubMed
  • No.: 18
  • 文献情報:
    J. Y. Yoo, et al., LPS-Induced Acute Kidney Injury Is Mediated by Nox4-SH3YL1., Cell Reports., 2020

  • 備考:
  • 参照:
    PubMed
  • No.: 19
  • 文献情報:
    P. Zhou, et al., NCOA2 coordinates with the transcriptional KAT2B-NF-kappaB partner to trigger inflammation response in acute kidney injury., Gene., 2022

  • 備考:
  • 参照:
    PubMed
  • No.: 20
  • 文献情報:
    J. Wen, et al., Cognitive impairment persists at least 1 year after juvenile rats are treated with methotrexate., Neuropharmacology., 2022

  • 備考:
  • 参照:
    PubMed
  • No.: 21
  • 文献情報:
    C. Dunker, et al., Rapid proliferation due to better metabolic adaptation results in full virulence of a filament-deficient Candida albicans strain., Nature Communications., 2021

  • 備考:
  • 参照:
    PubMed
  • No.: 22
  • 文献情報:
    J. Homolova, et al., Plasma Concentrations of Extracellular DNA in Acute Kidney Injury., Diagnostics., 2020

  • 備考:
  • 参照:
    PubMed
  • No.: 23
  • 文献情報:
    A. Jancuska, et al., Dynamics of Plasma and Urinary Extracellular DNA in Acute Kidney Injury., Int J Mol Sci., 2022

  • 備考:
  • 参照:
    PubMed
  • No.: 24
  • 文献情報:
    M. Hatem-Vaquero, et al., Integrin linked kinase regulates the transcription of AQP2 by NFATC3., Biochimica Et Biophysica Acta-Gene Regulatory Mechanisms., 2017

  • 備考:
  • 参照:
    PubMed
  • No.: 25
  • 文献情報:
    T. Song, et al., Exogenous pericyte delivery protects the mouse kidney from chronic ischemic injury., Am J Physiol Renal Physiol., 2022

  • 備考:
  • 参照:
    PubMed
  • No.: 26
  • 文献情報:
    D. Kim, et al., Combined Therapy of Low-Dose Angiotensin Receptor-Neprilysin Inhibitor and Sodium-Glucose Cotransporter-2 Inhibitor Prevents Doxorubicin-Induced Cardiac Dysfunction in Rodent Model with Minimal Adverse Effects., Pharmaceutics., 2022

  • 備考:
  • 参照:
    PubMed
  • No.: 27
  • 文献情報:
    D. Hu, et al., Inhibition of colorectal cancer tumorigenesis by ursolic acid and doxorubicin is mediated by targeting the Akt signaling pathway and activating the Hippo signaling pathway., Mol Med Rep., 2023

  • 備考:
  • 参照:
    PubMed
  • No.: 28
  • 文献情報:
    Q. Meng, et al., GTS-21, a selective alpha7 nicotinic acetylcholine receptor agonist, ameliorates diabetic nephropathy in Lepr(db/db) mice., Sci Rep., 2022

  • 備考:
  • 参照:
    PubMed
  • No.: 29
  • 文献情報:
    S. H. Chin, et al., Opposing Effects of Reduced Kidney Mass on Liver and Skeletal Muscle Insulin Sensitivity in Obese Mice., Diabetes., 2015

  • 備考:
  • 参照:
    PubMed
  • No.: 30
  • 文献情報:
    M. A. Aziz, et al., Hyperuricaemia and Inflammatory Markers in Patients with Chronic Kidney Disease., IJDDT., 2021

  • 備考:
  • 参照:
    PubMed
  • No.: 31
  • 文献情報:
    G. D. Hyde, et al., Axl Tyrosine Kinase Protects against Tubulo-Interstitial Apoptosis and Progression of Renal Failure in a Murine Model of Chronic Kidney Disease and Hyperphosphataemia., Plos One., 2014

  • 備考:
  • 参照:
    PubMed
  • No.: 32
  • 文献情報:
    C. C. Xie, et al., Therapeutic Benefits of Delayed Lithium Administration in the Neonatal Rat after Cerebral Hypoxia-Ischemia., Plos One., 2014

  • 備考:
  • 参照:
    PubMed
  • No.: 33
  • 文献情報:
    B. Y. Jeong, et al., Novel Plasminogen Activator Inhibitor-1 Inhibitors Prevent Diabetic Kidney Injury in a Mouse Model., Plos One., 2016

  • 備考:
  • 参照:
    PubMed
  • No.: 34
  • 文献情報:
    P. Zhang, et al., Discovery of Potential Biomarkers with Dose- and Time-Dependence in Cisplatin-Induced Nephrotoxicity Using Metabolomics Integrated with a Principal Component-Based Area Calculation Strategy., Chemical Research in Toxicology., 2016

  • 備考:
  • 参照:
    PubMed
  • No.: 35
  • 文献情報:
    Q. Y. Yuan, et al., PKN1 Directs Polarized RAB21 Vesicle Trafficking via RPH3A and Is Important for Neutrophil Adhesion and Ischemia-Reperfusion Injury., Cell Reports., 2017

  • 備考:
  • 参照:
    PubMed
  • No.: 36
  • 文献情報:
    M. Li, et al., Stem cell transplantation increases antioxidant effects in diabetic mice., Int J Biol Sci., 2012

  • 備考:
  • 参照:
    PubMed
  • No.: 37
  • 文献情報:
    K. Zhou, et al., Lithium protects hippocampal progenitors, cognitive performance and hypothalamus-pituitary function after irradiation to the juvenile rat brain., Oncotarget., 2017

  • 備考:
  • 参照:
    PubMed
  • No.: 38
  • 文献情報:
    K. Jaworska, et al., Both PD-1 Ligands Protect the Kidney from Ischemia Reperfusion Injury., Journal of Immunology., 2015

  • 備考:
  • 参照:
    PubMed
  • No.: 39
  • 文献情報:
    L. Scarfe, et al., Measures of kidney function by minimally invasive techniques correlate with histological glomerular damage in SCID mice with adriamycin-induced nephropathy., Scientific Reports., 2015

  • 備考:
  • 参照:
    PubMed
  • No.: 40
  • 文献情報:
    K. Inoki, et al., mTORC1 activation in podocytes is a critical step in the development of diabetic nephropathy in mice., J Clin Invest., 2011

  • 備考:
  • 参照:
    PubMed
  • No.: 41
  • 文献情報:
    S. Raychaudhuri, et al., A rare penetrant mutation in CFH confers high risk of age-related macular degeneration., Nat Genet., 2011

  • 備考:
  • 参照:
    PubMed
  • No.: 42
  • 文献情報:
    S. K. Norton, et al., Epoxyeicosatrienoic acids are involved in the C(70) fullerene derivative-induced control of allergic asthma., J Allergy Clin Immunol., 2012

  • 備考:
  • 参照:
    PubMed
  • No.: 43
  • 文献情報:
    J. H. Park, et al., Human umbilical cord blood-derived mesenchymal stem cells prevent diabetic renal injury through paracrine action., Diabetes Res Clin Pract., 2012

  • 備考:
  • 参照:
    PubMed
  • No.: 44
  • 文献情報:
    D. M. Small, et al., N-acetyl-cysteine increases cellular dysfunction in progressive chronic kidney damage after acute kidney injury by dampening endogenous antioxidant responses., American Journal of Physiology-Renal Physiology., 2018

  • 備考:
  • 参照:
    PubMed
  • No.: 45
  • 文献情報:
    D. Sun, et al., Experimental coronary artery stenosis accelerates kidney damage in renovascular hypertensive swine., Kidney International., 2015

  • 備考:
  • 参照:
    PubMed
  • No.: 46
  • 文献情報:
    U. P. Okorji, et al., A semi-synthetic derivative of artemisinin, artesunate inhibits prostaglandin E2 production in LPS/IFN粒-activated BV2 microglia., Bioorganic & Medicinal Chemistry., 2014

  • 備考:
  • 参照:
    PubMed
  • No.: 47
  • 文献情報:
    R. Miyakawa, et al., Comparative proteomic analysis of renal proteins from IgA nephropathy model mice and control mice., Clinical and Experimental Nephrology., 2020

  • 備考:
  • 参照:
    PubMed
  • No.: 48
  • 文献情報:
    M. Asgari, et al., Interval training and Crataegus persica ameliorate diabetic nephropathy via miR-126/Nrf-2 mediated inhibition of stress oxidative in rats with diabetes after myocardial ischemia-reperfusion injury., Biomed Pharmacother., 2022

  • 備考:
  • 参照:
    PubMed
  • No.: 49
  • 文献情報:
    I. Hwang, et al., Peroxiredoxin 3 deficiency accelerates chronic kidney injury in mice through interactions between macrophages and tubular epithelial cells., Free Radical Biology and Medicine., 2019

  • 備考:
  • 参照:
    PubMed
  • No.: 50
  • 文献情報:
    A. Almilaibary, et al., Fagonia indica attenuates chromium-induced nephrotoxicity via antioxidant and anti-inflammatory activities in mice., Heliyon., 2022

  • 備考:
  • 参照:
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