Jianhua Shao • UCSD Profiles (original) (raw)

  1. Maternal Obesity Programs Glucose Intolerance in Pregnant Female Offspring. Diabetes. 2026 Jan 01; 75(1):51-62. Qiao L, Lu C, Saget S, Shao J. PMID: 41144438; PMCID: PMC12716618.
    View in: PubMed Mentions: Fields:
    Translation:Animals
  2. Maternal GLP-1 receptor activation inhibits fetal growth. Am J Physiol Endocrinol Metab. 2024 Mar 01; 326(3):E268-E276. Qiao L, Lu C, Zang T, Dzyuba B, Shao J. PMID: 38197791; PMCID: PMC11193516.
    View in: PubMed Mentions: 10 Fields:
    Translation:Animals
  3. The Essential Role of Pancreatic α-Cells in Maternal Metabolic Adaptation to Pregnancy. Diabetes. 2022 05 01; 71(5):978-988. Qiao L, Saget S, Lu C, Zang T, Dzyuba B, Hay WW, Shao J. PMID: 35147704; PMCID: PMC9044124.
    View in: PubMed Mentions: 10 Fields:
    Translation:AnimalsCells
  4. Adiponectin Promotes Maternal β-Cell Expansion Through Placental Lactogen Expression. Diabetes. 2021 01; 70(1):132-142. Qiao L, Saget S, Lu C, Hay WW, Karsenty G, Shao J. PMID: 33087456; PMCID: PMC7881845.
    View in: PubMed Mentions: 19 Fields:
    Translation:HumansAnimalsCells
  5. Obesity Reduces Maternal Blood Triglyceride Concentrations by Reducing Angiopoietin-Like Protein 4 Expression in Mice. Diabetes. 2020 06; 69(6):1100-1109. Qiao L, Shetty SK, Spitler KM, Wattez JS, Davies BSJ, Shao J. PMID: 32051149; PMCID: PMC7243287.
    View in: PubMed Mentions: 7 Fields:
    Translation:Animals
  6. Prolonged Prepregnant Maternal High-Fat Feeding Reduces Fetal and Neonatal Blood Glucose Concentrations by Enhancing Fetal β-Cell Development in C57BL/6 Mice. Diabetes. 2019 08; 68(8):1604-1613. Qiao L, Wattez JS, Lim L, Rozance PJ, Hay WW, Shao J. PMID: 31127056; PMCID: PMC6692812.
    View in: PubMed Mentions: 14 Fields:
    Translation:AnimalsCells
  7. The platelet-derived growth factor receptor alpha promoter-directed expression of cre recombinase in mouse placenta. Dev Dyn. 2019 05; 248(5):363-374. Wattez JS, Qiao L, Lee S, Natale DRC, Shao J. PMID: 30843624; PMCID: PMC6488356.
    View in: PubMed Mentions: 11 Fields:
    Translation:AnimalsCells
  8. High-fat feeding reprograms maternal energy metabolism and induces long-term postpartum obesity in mice. Int J Obes (Lond). 2019 09; 43(9):1747-1758. Qiao L, Chu K, Wattez JS, Lee S, Gao H, Feng GS, Hay WW, Shao J. PMID: 30622311; PMCID: PMC6614019.
    View in: PubMed Mentions: 10 Fields:
    Translation:Animals
  9. Regulatory effects of brown adipose tissue thermogenesis on maternal metabolic adaptation, placental efficiency, and fetal growth in mice. Am J Physiol Endocrinol Metab. 2018 12 01; 315(6):E1224-E1231. Qiao L, Lee S, Nguyen A, Hay WW, Shao J. PMID: 30277793; PMCID: PMC6336951.
    View in: PubMed Mentions: 7 Fields:
    Translation:Animals
  10. Adiponectin Deficiency Impairs Maternal Metabolic Adaptation to Pregnancy in Mice. Diabetes. 2017 05; 66(5):1126-1135. Qiao L, Wattez JS, Lee S, Nguyen A, Schaack J, Hay WW, Shao J. PMID: 28073830; PMCID: PMC5399613.
    View in: PubMed Mentions: 42 Fields:
    Translation:AnimalsCells
  11. Knockout maternal adiponectin increases fetal growth in mice: potential role for trophoblast IGFBP-1. Diabetologia. 2016 11; 59(11):2417-2425. Qiao L, Wattez JS, Lee S, Guo Z, Schaack J, Hay WW, Zita MM, Parast M, Shao J. PMID: 27495989; PMCID: PMC5042853.
    View in: PubMed Mentions: 31 Fields:
    Translation:HumansAnimalsCells
  12. Muscle wasting and adipose tissue browning in infantile nephropathic cystinosis. J Cachexia Sarcopenia Muscle. 2016 05; 7(2):152-64. Cheung WW, Cherqui S, Ding W, Esparza M, Zhou P, Shao J, Lieber RL, Mak RH. PMID: 27493869; PMCID: PMC4864942.
    View in: PubMed Mentions: 19 Fields:
  13. Maternal High-Fat Feeding Increases Placental Lipoprotein Lipase Activity by Reducing SIRT1 Expression in Mice. Diabetes. 2015 Sep; 64(9):3111-20. Qiao L, Guo Z, Bosco C, Guidotti S, Wang Y, Wang M, Parast M, Schaack J, Hay WW, Moore TR, Shao J. PMID: 25948680; PMCID: PMC4542442.
    View in: PubMed Mentions: 38 Fields:
    Translation:HumansAnimalsCellsPHPublic Health
  14. Nutritional energy stimulates NAD+ production to promote tankyrase-mediated PARsylation in insulinoma cells. PLoS One. 2015; 10(4):e0122948. Zhong L, Yeh TY, Hao J, Pourtabatabaei N, Mahata SK, Shao J, Chessler SD, Chi NW. PMID: 25876076; PMCID: PMC4395342.
    View in: PubMed Mentions: 6 Fields:
    Translation:HumansAnimalsCells
  15. Cytoplasmic tyrosine phosphatase Shp2 coordinates hepatic regulation of bile acid and FGF15/19 signaling to repress bile acid synthesis. Cell Metab. 2014 Aug 05; 20(2):320-32. Li S, Hsu DD, Li B, Luo X, Alderson N, Qiao L, Ma L, Zhu HH, He Z, Suino-Powell K, Ji K, Li J, Shao J, Xu HE, Li T, Feng GS. PMID: 24981838; PMCID: PMC4365973.
    View in: PubMed Mentions: 48 Fields:
    Translation:AnimalsCells
  16. Macrophage depletion disrupts immune balance and energy homeostasis. PLoS One. 2014; 9(6):e99575. Lee B, Qiao L, Kinney B, Feng GS, Shao J. PMID: 24911652; PMCID: PMC4049836.
    View in: PubMed Mentions: 18 Fields:
    Translation:AnimalsCells
  17. Adiponectin and energy homeostasis. Rev Endocr Metab Disord. 2014 Jun; 15(2):149-56. Lee B, Shao J. PMID: 24170312; PMCID: PMC4006341.
    View in: PubMed Mentions: 82 Fields:
    Translation:Humans
  18. Intermittent cold exposure enhances fat accumulation in mice. PLoS One. 2014; 9(5):e96432. Yoo HS, Qiao L, Bosco C, Leong LH, Lytle N, Feng GS, Chi NW, Shao J. PMID: 24789228; PMCID: PMC4008632.
    View in: PubMed Mentions: 20 Fields:
    Translation:AnimalsCells
  19. C/EBPα regulates macrophage activation and systemic metabolism. Am J Physiol Endocrinol Metab. 2014 May 15; 306(10):E1144-54. Lee B, Qiao L, Lu M, Yoo HS, Cheung W, Mak R, Schaack J, Feng GS, Chi NW, Olefsky JM, Shao J. PMID: 24691027; PMCID: PMC4025063.
    View in: PubMed Mentions: 34 Fields:
    Translation:AnimalsCells
  20. Adiponectin reduces thermogenesis by inhibiting brown adipose tissue activation in mice. Diabetologia. 2014 May; 57(5):1027-36. Qiao L, Yoo Hs, Bosco C, Lee B, Feng GS, Schaack J, Chi NW, Shao J. PMID: 24531262; PMCID: PMC4077285.
    View in: PubMed Mentions: 49 Fields:
    Translation:AnimalsCells
  21. Nonreceptor tyrosine phosphatase Shp2 promotes adipogenesis through inhibition of p38 MAP kinase. Proc Natl Acad Sci U S A. 2013 Jan 02; 110(1):E79-88. He Z, Zhu HH, Bauler TJ, Wang J, Ciaraldi T, Alderson N, Li S, Raquil MA, Ji K, Wang S, Shao J, Henry RR, King PD, Feng GS. PMID: 23236157; PMCID: PMC3538237.
    View in: PubMed Mentions: 29 Fields:
    Translation:AnimalsCells
  22. Adiponectin enhances mouse fetal fat deposition. Diabetes. 2012 Dec; 61(12):3199-207. Qiao L, Yoo HS, Madon A, Kinney B, Hay WW, Shao J. PMID: 22872236; PMCID: PMC3501876.
    View in: PubMed Mentions: 31 Fields:
    Translation:Animals
  23. Adiponectin increases skeletal muscle mitochondrial biogenesis by suppressing mitogen-activated protein kinase phosphatase-1. Diabetes. 2012 Jun; 61(6):1463-70. Qiao L, Kinney B, Yoo HS, Lee B, Schaack J, Shao J. PMID: 22415879; PMCID: PMC3357265.
    View in: PubMed Mentions: 45 Fields:
    Translation:AnimalsCells
  24. Adiponectin inhibits lipolysis in mouse adipocytes. Diabetes. 2011 May; 60(5):1519-27. Qiao L, Kinney B, Schaack J, Shao J. PMID: 21430087; PMCID: PMC3292326.
    View in: PubMed Mentions: 58 Fields:
    Translation:AnimalsCells
  25. Energy intake and adiponectin gene expression. Am J Physiol Endocrinol Metab. 2011 May; 300(5):E809-16. Qiao L, Lee B, Kinney B, Yoo HS, Shao J. PMID: 21325106; PMCID: PMC3093972.
    View in: PubMed Mentions: 25 Fields:
    Translation:AnimalsCells
  26. B56alpha/protein phosphatase 2A inhibits adipose lipolysis in high-fat diet-induced obese mice. Endocrinology. 2010 Aug; 151(8):3624-32. Kinney BP, Qiao L, Levaugh JM, Shao J. PMID: 20534721; PMCID: PMC2940515.
    View in: PubMed Mentions: 11 Fields:
    Translation:HumansAnimalsCells

This graph shows the number and percent of publications by field. Fields are based on how the National Library of Medicine (NLM) classifies the publications' journals and might not represent the specific topics of the publications. Note that an individual publication can be assigned to more than one field. As a result, the publication counts in this graph might add up to more than the number of publications the person has written. To see the data as text, click here.

This graph shows the number and percent of publications by field. Fields are based on how the National Library of Medicine (NLM) classifies the publications' journals and might not represent the specific topics of the publications. Note that an individual publication can be assigned to more than one field. As a result, the publication counts in this graph might add up to more than the number of publications the person has written. To see the data as text, click here.

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