Abstract
Aim: To investigate the effect of high-fat diet on expressions of hypothalamic neuropeptide
Y (NPY) and Y1, Y2, Y5 receptors and the mechanism relative to the susceptibility
of obesity.
Methods: Thirty-six female SD rats were randomly divided into high-fat diet group (HF, n=27)
and chow food group (CF, n=9), and given either HF or CF diet for 13 weeks. Then the
HF diet group was subdivided into dietary induced obesi-ty (DIO) and dietary induced
obesity resistant (DIO-R) rat according to the final body weight. Body weight, caloric
intake, energy efficiency, visceral fat pads were measured and compared. The levels
of plasma and hypothalamic NPY were determined by Radioimmunoassay. Real-time Polymerase
Chain Reaction (PCR) was used to measure the gene expression of NPY and its receptors
in hypothalamus.
Results: Body weight, caloric intake, energy efficiency and visceral fat pads in DIO rats
were higher significantly than those in CF or DIO-R rats (p<0.01). No difference in
plasma NPY level was detected among the three groups (p>0.05); the hypothalamic NPY
level was significantly higher in DIO group than in CF or DIO-R group (p<0.01). Gene
expression levels of NPY and Y1, Y2, Y5 receptors were higher significantly in DIO
group than in CF or DIO-R group (p<0.01), while no significant difference was found
between DIO-R and CF rats (p>0.05), except that Y2 receptor was lower in DIO-R rats
(p<0.01).
Conclusions: SD rat fed with a HF diet showed different susceptibility to obesity, and up-regulated
hypothalamic NPY and Y1, Y2, Y5 receptor gene expressions were closely associated
with being predisposed to obesity and overeating of DIO rats.
Key words
hypothalamus - neuropeptide Y - NPY receptor - obesity - caloric intake - energy efficiency
- high-fat diet - dietary induced obesity
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Correspondence
Prof. N. Yang
Department of Nutrition and Food Hygiene
School of Public Health
Tongji Medical College
Huazhong University of Science and Technology
Hangkong Road 13
430030 Wuhan
PR China
Phone: +86/27/62434794
Fax: +86/27/83693763
Email: zynh@mails.tjmu.edu.cn