Correction of enzymatic deficits in hepatocytes by systemic administration of a recombinant protein is a desired therapeutic goal for hepatic enzymopenic disorders such as acute intermittent porphyria (AIP), an inherited porphobilinogen deaminase (PBGD) deficiency. Apolipoprotein A-I (ApoAI) is internalized into hepatocytes during the centripetal transport of cholesterol. Here, we generated a recombinant protein formed by linking ApoAI to the amino terminus of human PBGD (rhApoAI-PBGD) in an attempt to transfer PBGD into liver cells. In vivo experiments showed that, after intravenous injection, rhApoAI-PBGD circulates in blood incorporated into high-density lipoprotein (HDL), penetrates into hepatocytes, and crosses the blood-brain barrier, increasing PBGD activity in both the liver and brain. Consistently, the intravenous administration of rhApoAI-PBGD or the hyperfunctional rApoAI-PBGD-I129M/N340S (rApoAI-PBGDms) variant efficiently prevented and abrogated phenobarbital-induced acute attacks in a mouse model of AIP. One month after a single intravenous dose of rApoAI-PBGDms, the protein was still detectable in the liver, and hepatic PBGD activity remained increased above control values. A long-lasting therapeutic effect of rApoAI-PBGDms was observed after either intravenous or subcutaneous administration. These data describe a method to deliver PBGD to hepatocytes with resulting enhanced hepatic enzymatic activity and protection against AIP attacks in rodent models, suggesting that the approach might be an effective therapy for AIP.
Download full-text PDF |
Source |
---|---|
http://dx.doi.org/10.1126/scitranslmed.abc0700 | DOI Listing |
Plants (Basel)
December 2024
Stage Key Laboratory of Crop Biology, College of Horticulture Science and Engineering, Shandong Agricultural University, Tai'an 271018, China.
Brassinosteroids (BRs) are recognized for their ability to enhance plant salt tolerance. While considerable research has focused on their effects under neutral salt conditions, the mechanisms through which BRs regulate photosynthesis under alkaline salt stress are less well understood. This study investigates these mechanisms, examining plant growth, photosynthetic electron transport, gas exchange parameters, Calvin cycle dynamics, and the expression of key antioxidant and Calvin cycle genes under alkaline stress conditions induced by NaHCO.
View Article and Find Full Text PDFCureus
November 2024
Internal Medicine-Pediatrics, University of California Los Angeles, Los Angeles, USA.
Acute intermittent porphyria (AIP) is a rare inherited metabolic disorder caused by decreased activity of the enzyme porphobilinogen deaminase in the heme synthesis pathway. This leads to the accumulation of toxic porphyrin precursors, such as porphobilinogen and δ-aminolevulinic acid. Clinical manifestations typically include episodic bouts of severe neurovisceral pain and autonomic dysfunction.
View Article and Find Full Text PDFCureus
September 2024
Pathology, MetroHealth Medical Center, Cleveland, USA.
A 34-year-old Asian woman arrived at the emergency department (ED) with complaints of sharp, cramping abdominal pain followed by stabbing chest pain that radiated to her back. She also reported numbness, tingling in both hands and feet, and a burning sensation. Upon examination, she exhibited tachycardia and persistently elevated blood pressure.
View Article and Find Full Text PDFIndian J Palliat Care
August 2024
Department of Onco-Anaesthesia and Palliative Medicine, All India Institute of Medical Sciences, Dr B.R. Ambedkar, Institute Rotary Cancer Hospital, New Delhi, Delhi, India.
Acute intermitttent porphyria belongs to a rare group of diseases hallmarked by deficient biosynthesis of heme. It carries a significant symptom burden, both physical and emotional,and therefore palliative care has emerged as an essential tool in the armamentarium of porphyria management . It takes care of the patient as a whole and caters to all aspects that the disease process demands.
View Article and Find Full Text PDFEnter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!