Characterization of the scavenger cell proteome in mouse and rat liver.
Martha PaluschinskiCheng Jun JinNatalia QvartskhavaBoris GörgMarianne WammersJudith LangKarl LangGereon PoschmannKai StühlerDieter HäussingerPublished in: Biological chemistry (2021)
The structural-functional organization of ammonia and glutamine metabolism in the liver acinus involves highly specialized hepatocyte subpopulations like glutamine synthetase (GS) expressing perivenous hepatocytes (scavenger cells). However, this cell population has not yet been characterized extensively regarding expression of other genes and potential subpopulations. This was investigated in the present study by proteome profiling of periportal GS-negative and perivenous GS-expressing hepatocytes from mouse and rat. Apart from established markers of GS+ hepatocytes such as glutamate/aspartate transporter II (GLT1) or ammonium transporter Rh type B (RhBG), we identified novel scavenger cell-specific proteins like basal transcription factor 3 (BTF3) and heat-shock protein 25 (HSP25). Interestingly, BTF3 and HSP25 were heterogeneously distributed among GS+ hepatocytes in mouse liver slices. Feeding experiments showed that RhBG expression was increased in livers from mice fed with high protein diet compared to standard chow. While spatial distributions of GS and carbamoylphosphate synthetase 1 (CPS1) were unaffected, periportal areas constituted by glutaminase 2 (GLS2)-positive hepatocytes were enlarged or reduced in response to high or low protein diet, respectively. The data suggest that the population of perivenous GS+ scavenger cells is heterogeneous and not uniform as previously suggested which may reflect a functional heterogeneity, possibly relevant for liver regeneration.
Keyphrases
- heat shock protein
- single cell
- liver injury
- induced apoptosis
- transcription factor
- poor prognosis
- heat shock
- drug induced
- cell therapy
- physical activity
- cell cycle arrest
- oxidative stress
- binding protein
- weight loss
- heat stress
- palliative care
- type diabetes
- deep learning
- signaling pathway
- dna methylation
- climate change
- machine learning
- bone marrow
- mass spectrometry
- long non coding rna
- risk assessment
- skeletal muscle
- genome wide
- adipose tissue
- metabolic syndrome
- genome wide identification
- room temperature
- cell death
- atomic force microscopy