Pentosidine Is Associated With Cortical Bone Geometry and Insulin Resistance in Otherwise Healthy Children

Joseph M Kindler1, Emma M Laing1, Weixi Liu2

  • 1Department of Foods and Nutrition, The University of Georgia, Athens, GA, USA.

Insights

Advanced glycation end products (AGEs) like pentosidine are linked to poorer bone health in children, especially those with insulin resistance. This study reveals AGEs negatively impact bone density and geometry in growing youth.

Area of Science:

  • Pediatric Bone Health
  • Metabolic Health in Children
  • Advanced Glycation End Products (AGEs)

Background:

  • Pentosidine, an advanced glycation end product (AGE), is linked to adult fracture risk, particularly in diabetes.
  • AGE accumulation in bone collagen may cause fragility and affect bone turnover and geometry.
  • The impact of AGEs on bone health in children remains understudied.

Purpose of the Study:

  • To investigate the relationship between pentosidine levels and cortical bone density, geometry, and strength in children.
  • To explore potential links between AGEs, bone health, and insulin sensitivity in pediatric populations.

Main Methods:

  • Cross-sectional study of 160 healthy children (ages 9-13) at Tanner stage 2 or 3.
  • Peripheral quantitative computed tomography (pQCT) assessed tibia and radius cortical bone and muscle.
  • Fasting serum insulin, glucose, and pentosidine were measured; insulin sensitivity was calculated using QUICKI.

Main Results:

  • Pentosidine negatively correlated with insulin sensitivity (QUICKI) in children.
  • Higher pentosidine levels were associated with lower bone mineral density, content, area, and thickness, and larger endosteal circumference.
  • The negative association between pentosidine and bone thickness was exacerbated by greater insulin resistance.

Conclusions:

  • This study provides the first evidence of a potential adverse effect of AGEs on bone strength in healthy children.
  • The findings suggest that AGEs may negatively influence bone development and geometry during childhood.
  • The detrimental effects of pentosidine on bone were most pronounced in children with higher insulin resistance, highlighting the need for further research in at-risk youth.

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