Automated Author Profile

Pham, H.

Current S-Index

3.7

Sum of Dataset Indices for all datasets

Average Dataset Index per Dataset

0.7

Average Dataset Index per dataset

Total Datasets

5

Total datasets for this author

Average FAIR Score

78.5%

Average FAIR Score per dataset

Total Citations

4

Total citations to the author's datasets

Total Mentions

0

Total mentions of the author's datasets

S-Index Interpretation

S-Index Over Time

Cumulative Citations Over Time

Cumulative Mentions Over Time

Datasets

Sustainable refrigerants for comfort and refrigeration.

This paper reviews the recent investigation on the performance of the most promising refrigerants to replace today HFCs used in comfort and refrigeration applications in order to meet the F-gas regulation.Theoretical and experimental results with various scroll compressors using R32, HFOs blends and R290 will be discussed. The experimental results show that R32, R454B and R452B are good refrigerant candidates to replace R410A with a trade-off between GWP, efficiency, flammability, cost and where components and systems require less development effort compared to other solutions. Their long-term viability will certainly depend on how many applications (like commercial and industrial refrigeration, residential comfort) will convert to natural or synthetic refrigerants with a GWP below 150.R454C and R455A are good performance refrigerants and could be a long-term solution in refrigeration and residential heating applications where natural refrigerants cannot be used for safety, efficiency or cost reasons. These refrigerants have a high glide temperature during the phase process change at constant pressure of which one can take advantage if the system design permits it.Other aspects such as the need of new lubricants, operating map limitations and compressor design changes to meet the safety requirements and European norms are also addressed.

Authors

  • BELLA, B. ;
  • PHAM, H. ;
  • RAJENDRAN, R.
3 Citations0 Mentions54% FAIR1.7 Dataset Index
10.18462/iir.hfo.2018.11862018

Supplementary Material for: Nitric Oxide Pathway and Proliferation of Neural Progenitors in the Neonatal Rat

Several lines of evidence demonstrate that inhaled nitric oxide (iNO) not only acts locally on the pulmonary vasculature but also has remote effects on the mature and developing brain under basal or pathological conditions by modulating cerebral blood flow and microvascularization, white matter maturation, inflammation, and subsequent brain repair. Previously, consistent studies demonstrated that increased levels of guanosine 3′,5′ cyclic monophosphate (cGMP), the main effector of biological effect induced by nitric oxide (NO), significantly augment proliferation and neuronal differentiation of adult neural progenitor cells (NPCs). In the present study, we ask the question whether iNO could promote the proliferation of NPCs in the uninjured developing brain. We first reported that iNO exposure at a concentration of 20 ppm during the first 7 days of life was associated with a significant but transient elevation of brain cGMP concentration 2 h after the onset of iNO exposure and a subsequent increase in myelin content of the developing white matter at postnatal day (P) 10. Using BrDu labelling and colabelling with specific cell-type markers we found that iNO exposure of rat pups results in an increased NPC proliferation in several layers of the subventricular zone (SVZ) at both early (30 h) and late (P7) time points. These proliferating NPCs were found to be sustainably viable and subsequently differentiated into oligodendroglial cells in the developing white matter and cortex. We also found that NG2 immunoreactivity around vessel walls, labeling pericyte cells, was increased in NO-exposed rat pups in the periventricular SVZ. In conclusion, iNO appears to act on oligodendrocyte progenitor cells, leading to increased density of mature oligodendrocytes and myelin content in the immature rat brain.

Authors

  • Phan Duy, A. ;
  • Pham, H. ;
  • Pansiot, J. ;
  • Gressens, P. ;
  • Charriaut-Marlangue, C. ;
  • Baud, O.
1 Citation0 Mentions85% FAIR0.7 Dataset Index
10.6084/m9.figshare.51276762015

Supplementary Material for: Nitric Oxide Pathway and Proliferation of Neural Progenitors in the Neonatal Rat

Several lines of evidence demonstrate that inhaled nitric oxide (iNO) not only acts locally on the pulmonary vasculature but also has remote effects on the mature and developing brain under basal or pathological conditions by modulating cerebral blood flow and microvascularization, white matter maturation, inflammation, and subsequent brain repair. Previously, consistent studies demonstrated that increased levels of guanosine 3′,5′ cyclic monophosphate (cGMP), the main effector of biological effect induced by nitric oxide (NO), significantly augment proliferation and neuronal differentiation of adult neural progenitor cells (NPCs). In the present study, we ask the question whether iNO could promote the proliferation of NPCs in the uninjured developing brain. We first reported that iNO exposure at a concentration of 20 ppm during the first 7 days of life was associated with a significant but transient elevation of brain cGMP concentration 2 h after the onset of iNO exposure and a subsequent increase in myelin content of the developing white matter at postnatal day (P) 10. Using BrDu labelling and colabelling with specific cell-type markers we found that iNO exposure of rat pups results in an increased NPC proliferation in several layers of the subventricular zone (SVZ) at both early (30 h) and late (P7) time points. These proliferating NPCs were found to be sustainably viable and subsequently differentiated into oligodendroglial cells in the developing white matter and cortex. We also found that NG2 immunoreactivity around vessel walls, labeling pericyte cells, was increased in NO-exposed rat pups in the periventricular SVZ. In conclusion, iNO appears to act on oligodendrocyte progenitor cells, leading to increased density of mature oligodendrocytes and myelin content in the immature rat brain.

Authors

  • Phan Duy, A. ;
  • Pham, H. ;
  • Pansiot, J. ;
  • Gressens, P. ;
  • Charriaut-Marlangue, C. ;
  • Baud, O.
0 Citations0 Mentions85% FAIR0.4 Dataset Index
10.6084/m9.figshare.5127676.v12015

Supplementary Material for: Deleterious Effect of Hyperoxia at Birth on White Matter Damage in the Newborn Rat

White matter damage (WMD) remains the leading cause of cerebral palsy in children born prematurely. The release of an excessive amount of reactive oxygen species is recognized as a risk factor for WMD. We hypothesize that free radical injury during reoxygenation at birth may be harmful to the immature white matter and may underlie, at least in part, the pathogenesis of WMD. We tested this hypothesis in rat pups delivered from normoxic pregnant rats, and by investigating an animal model based on protracted antenatal hypoxia in the pregnant rat and mimicking the main features of human WMD in rat pups. From embryonic day (E)5 to E21, the pregnant rats were placed in a chamber supplied with a gas mixture that either induced hypoxia (FiO2 = 10%) or maintained normoxia (FiO2 = 21%). On E21, the dams were removed from the chamber and housed under either normoxia (FiO2 = 21%), hyperoxia (FiO2 = 60%) or slowly reoxygenated (FiO2 from 15% at E21 to 21% at postnatal day 7). Postnatal hyperoxia was associated with a significantly increased density of activated microglial cells (+105%) and TUNEL (terminal deoxynucleotidyl transferase-mediated deoxyuridine triphosphate nick end labeling)-positive cells (+85%) within the developing white matter. Myelin content (–31%) and mature oligodendrocyte density (–37%) in the normal developing white matter were significantly decreased by postnatal hyperoxia. Postnatal hyperoxia significantly potentiated the myelination delay and oligodendroglial dysmaturation induced by antenatal hypoxia. In contrast, progressive reoxygenation at birth did not induce any change in white matter inflammation, myelination and cell death as compared with normoxic controls, and prevented most of the WMD observed following antenatal hypoxia. This study demonstrates a deleterious effect of hyperoxia at birth on the developing white matter in normal rat pups. Postnatal hyperoxia worsened the WMD induced by antenatal hypoxia. Hyperoxia at birth should be avoided in preterm infants at risk of WMD.

Authors

  • Vottier, G. ;
  • Pham, H. ;
  • Pansiot, J. ;
  • Biran, V. ;
  • Gressens, P. ;
  • Charriaut-Marlangue, C. ;
  • Baud, O.
0 Citations0 Mentions85% FAIR0.5 Dataset Index
10.6084/m9.figshare.51218352011

Supplementary Material for: Deleterious Effect of Hyperoxia at Birth on White Matter Damage in the Newborn Rat

White matter damage (WMD) remains the leading cause of cerebral palsy in children born prematurely. The release of an excessive amount of reactive oxygen species is recognized as a risk factor for WMD. We hypothesize that free radical injury during reoxygenation at birth may be harmful to the immature white matter and may underlie, at least in part, the pathogenesis of WMD. We tested this hypothesis in rat pups delivered from normoxic pregnant rats, and by investigating an animal model based on protracted antenatal hypoxia in the pregnant rat and mimicking the main features of human WMD in rat pups. From embryonic day (E)5 to E21, the pregnant rats were placed in a chamber supplied with a gas mixture that either induced hypoxia (FiO2 = 10%) or maintained normoxia (FiO2 = 21%). On E21, the dams were removed from the chamber and housed under either normoxia (FiO2 = 21%), hyperoxia (FiO2 = 60%) or slowly reoxygenated (FiO2 from 15% at E21 to 21% at postnatal day 7). Postnatal hyperoxia was associated with a significantly increased density of activated microglial cells (+105%) and TUNEL (terminal deoxynucleotidyl transferase-mediated deoxyuridine triphosphate nick end labeling)-positive cells (+85%) within the developing white matter. Myelin content (–31%) and mature oligodendrocyte density (–37%) in the normal developing white matter were significantly decreased by postnatal hyperoxia. Postnatal hyperoxia significantly potentiated the myelination delay and oligodendroglial dysmaturation induced by antenatal hypoxia. In contrast, progressive reoxygenation at birth did not induce any change in white matter inflammation, myelination and cell death as compared with normoxic controls, and prevented most of the WMD observed following antenatal hypoxia. This study demonstrates a deleterious effect of hyperoxia at birth on the developing white matter in normal rat pups. Postnatal hyperoxia worsened the WMD induced by antenatal hypoxia. Hyperoxia at birth should be avoided in preterm infants at risk of WMD.

Authors

  • Vottier, G. ;
  • Pham, H. ;
  • Pansiot, J. ;
  • Biran, V. ;
  • Gressens, P. ;
  • Charriaut-Marlangue, C. ;
  • Baud, O.
0 Citations0 Mentions85% FAIR0.5 Dataset Index
10.6084/m9.figshare.5121835.v12011