I am a developmental lung physiologist who specialises in understanding the factors regulating normal and abnormal lung development as well as the physiological transformation of the lung into an efficient gas-exchange organ at birth.
Improved Respiratory Support And Outcomes For Very Preterm Babies
Funder
National Health and Medical Research Council
Funding Amount
$9,185,907.00
Summary
Premature babies are born with lungs that are not developed enough to sustain their breathing needs after birth. As a result, they need intensive care which is the most costly and challenging problem in newborn medicine as these infants can suffer life-long diseases because of their early birth. This programs study will help to understand the causes of lung disease in premature babies and develop better ways of caring for them to improve their chances of survival without ongoing illness and disa ....Premature babies are born with lungs that are not developed enough to sustain their breathing needs after birth. As a result, they need intensive care which is the most costly and challenging problem in newborn medicine as these infants can suffer life-long diseases because of their early birth. This programs study will help to understand the causes of lung disease in premature babies and develop better ways of caring for them to improve their chances of survival without ongoing illness and disabilityRead moreRead less
Alveolar Epithelial Cell Differentiation And Apoptosis: Effects Of Preterm Birth, Corticosteroids And Stretch.
Funder
National Health and Medical Research Council
Funding Amount
$484,500.00
Summary
In the lung, gas exchange takes place in small terminal airsacs called alveoli. The internal surface of the alveoli are lined with 2 types of specialist cells, the type-I and type-II cells. Both cells are essential for the normal functioning of the lung; type-I cells provide a thin barrier for the gas exchange, whereas type-II cells produce the surface-active material, surfactant. In order to survive after birth, the lungs of the newborn must have appropriate numbers of each of these cell types. ....In the lung, gas exchange takes place in small terminal airsacs called alveoli. The internal surface of the alveoli are lined with 2 types of specialist cells, the type-I and type-II cells. Both cells are essential for the normal functioning of the lung; type-I cells provide a thin barrier for the gas exchange, whereas type-II cells produce the surface-active material, surfactant. In order to survive after birth, the lungs of the newborn must have appropriate numbers of each of these cell types. However, babies that are born very prematurely have few, if any, mature cells as most are non-specialised cells that possess none of the characteristics of mature type-I and type-II cells. Therefore, the lungs of very preterm babies have low levels of surfactant, are prone to injury and infection and are not efficient in the exchange of oxygen and carbon dioxide. As such, these infants are at high risk of developing chronic lung disease which is a serious debilitating disease that has long term health implications. We believe that the non-specialised cells are more prone to injury and cell death than mature cells which makes the very premature infant more susceptible to the development of chronic lung disease. As the survival and respiratory health of these infants depends upon most type-I and type-II cells maturing after birth, it is critical to understand the factors that regulate their maturation. This information will allow the development of treatments that can enhance the maturation of these cell types. This application is focused towards understanding the factors that control maturation of type-I and type-II cells, as well as the role of the non-specialised cells in the development of chronic lung disease in babies that are born very prematurely.Read moreRead less
Vitamin D Deprivation In Early Life: Programming Of Vascular Function In Adulthood
Funder
National Health and Medical Research Council
Funding Amount
$440,250.00
Summary
It is becoming increasing evident that appropriate nutrition in fetal-early life is important in programming the cardiovascular system of the offspring, influencing its function throughout life. Maternal deficiency in vitamin D is a recently-identified concern world-wide, including in Australian women. We have recently found that vitamin D deficiency in pregnant rats results in marked hypertension in the offspring, when only 7 weeks of age. This is associated with impaired endothelium-dependent ....It is becoming increasing evident that appropriate nutrition in fetal-early life is important in programming the cardiovascular system of the offspring, influencing its function throughout life. Maternal deficiency in vitamin D is a recently-identified concern world-wide, including in Australian women. We have recently found that vitamin D deficiency in pregnant rats results in marked hypertension in the offspring, when only 7 weeks of age. This is associated with impaired endothelium-dependent vasodilator function, increased smooth muscle tone and increased constriction to nerve stimulation. A combination of intracellular electrophysiological techniques and tension recordings will be used to investigate detailed mechanisms in arteries isolated from key vascular beds. In vivo studies will probe the role of vitamin D deficiency in the control of regional blood flow control, and its influence on the underlying regulatory mechanisms responsible for the cardiovascular dysfunction that we have observed. We will test whether the cardiovascular dysfunction in the offspring following vitamin D deficiency is reversible upon repletion, or is programmed and thus not reversible with repletion. Our early results suggest that the deleterious effects are not reversible. From this study we aim to be in a position of greater confidence from which to inform women as to the importance for their baby of ensuring adequate vitamin D repletion during pregnancy, to minimise risk of later cardiovascular disease.Read moreRead less