Abstract
The heart and left ventricle of the marsupial western grey kangaroo
Macropus fuliginosus exhibit biphasic allometric growth, whereby a
negative shift in the trajectory of cardiac growth occurs at pouch exit.
In this study, we used transmission electron microscopy to examine
the scaling of left ventricle cardiomyocyte ultrastructure across
development in the western grey kangaroo over a 190-fold body
mass range (0.355−67.5 kg). The volume-density (%) of myofibrils,
mitochondria, sarcoplasmic reticuli and T-tubules increase significantly
during in-pouch growth, such that the absolute volume (ml) of these
organelles scales with body mass (Mb; kg) with steep hyperallometry:
1.41Mb
1.38, 0.64Mb
1.29, 0.066Mb
1.45 and 0.035Mb
1.87, respectively.
Maturation of the left ventricle ultrastructure coincides with pouch
vacation, as organelle volume-densities scale independent of body
mass across post-pouch development, such that absolute organelle
volumes scale in parallel and with relatively shallow hypoallometry:
4.65Mb
0.79, 1.75Mb
0.77, 0.21Mb
0.79 and 0.35Mb
0.79, respectively. The
steep hyperallometry of organelle volumes and volume-densities
across in-pouch growth is consistent with the improved contractile
performance of isolated cardiac muscle during fetal development in
placental mammals, and is probably critical in augmenting cardiac
output to levels necessary for endothermy and independent locomotion
in the young kangaroo as it prepares for pouch exit. The shallow
hypoallometryof organelle volumes duringpost-pouch growth suggests
a decrease in relative cardiac requirements as body mass increases in
free-roaming kangaroos,which is possibly because the energy required
forhopping is independentof speed,and thecapacity forenergystorage
during hopping could increase as the kangaroo grows.
| Original language | English |
|---|---|
| Pages (from-to) | 1767-1776 |
| Journal | The Journal of Experimental Biology |
| Volume | 218 |
| DOIs | |
| Publication status | Published - 2015 |
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