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Suppression of mammalian bone growth by membrane transport inhibitors
Mohamad Y Loqman1, Peter G Bush, Colin Farquharson
1Centre for Integrative Physiology, School of Biomedical Sciences, George Square, University of Edinburgh, Edinburgh EH8 9XD, Scotland, UK.
Abstract:
Bone lengthening during skeletal growth is driven primarily by the controlled enlargement of growth plate (GP) chondrocytes. The cellular mechanisms are unclear but membrane transporters are probably involved. We investigated the role of the Na(+)/H(+) antiporter (NHE1) and anion exchanger (AE2) in bone lengthening and GP chondrocyte hypertrophy in Sprague-Dawley 7-day-old rat (P7) bone rudiments using the inhibitors EIPA (5-(N-ethyl-N-isopropyl)amiloride) and DIDS (4,4-diidothiocyano-2,2-stilbenedisulphonate), respectively. We have also determined cell-associated levels of these transporters along the GP using fluorescent immunohistochemistry (FIHC). Culture of bones with EIPA or DIDS inhibited rudiment growth (50% at approx. 250 and 25 µM, respectively). Both decreased the size of the hypertrophic zone (P < 0.05) but had no effect on overall length or cell density of the GP. In situ chondrocyte volume in proliferative and hypertrophic zones was decreased (P < 0.01) with EIPA but not DIDS. FIHC labeling of NHE1 was relatively high and constant along the GP but declined steeply in the late hypertrophic zone. In contrast, AE2 labeling was relatively low in proliferative zone cells but increased (P < 0.05) reaching a maximum in the early hypertrophic zone, before falling rapidly in the late hypertrophic zone suggesting AE2 might regulate the transition phase of chondrocytes between proliferative and hypertrophic zones. The inhibition of bone growth by EIPA may be due to a reduction to chondrocyte volume set-point. However the effect of DIDS was unclear but could result from inhibition of AE2 and blocking of the transition phase. These results demonstrate that NHE1 and AE2 are important regulators of bone growth.
Insights
The study found that Na(+)/H(+) antiporter (NHE1) and anion exchanger (AE2) are key regulators of bone lengthening. Inhibiting NHE1 reduced chondrocyte volume, impacting bone growth, while AE2
Area of Science:
- Cell Biology
- Developmental Biology
- Physiology
Background:
- Bone lengthening is crucial for skeletal growth, driven by growth plate (GP) chondrocyte enlargement.
- The precise cellular mechanisms governing chondrocyte hypertrophy and bone elongation remain incompletely understood.
- Membrane transporters are hypothesized to play a significant role in these processes.
Purpose of the Study:
- To investigate the roles of the Na(+)/H(+) antiporter (NHE1) and anion exchanger (AE2) in regulating bone lengthening and GP chondrocyte hypertrophy.
- To determine the spatial distribution of NHE1 and AE2 within the GP during skeletal development.
Main Methods:
- Utilized Sprague-Dawley rat (P7) bone rudiments cultured with specific inhibitors: EIPA for NHE1 and DIDS for AE2.
- Quantified bone rudiment growth, hypertrophic zone size, and in situ chondrocyte volume.
- Employed fluorescent immunohistochemistry (FIHC) to assess cell-associated levels of NHE1 and AE2 along the GP.
Main Results:
- Both EIPA and DIDS significantly inhibited bone rudiment growth and decreased the hypertrophic zone size.
- EIPA treatment reduced chondrocyte volume in proliferative and hypertrophic zones, whereas DIDS did not.
- NHE1 levels were high and constant along the GP, decreasing in the late hypertrophic zone; AE2 levels increased from the proliferative to early hypertrophic zones before declining rapidly.
Conclusions:
- NHE1 and AE2 are identified as critical regulators of longitudinal bone growth.
- NHE1 inhibition may impair bone growth by reducing chondrocyte volume set-point.
- AE2 appears to play a role in regulating chondrocyte transition between proliferative and hypertrophic stages, potentially influencing bone elongation.
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