Clinical and radiological features of primary intraosseous carcinoma arising de novo within the jaws

Author(s):  
L. Ardekian ◽  
M. Peled ◽  
D. Laufer
2010 ◽  
Vol 5 (3) ◽  
pp. 233-240 ◽  
Author(s):  
Abbas Khodayari ◽  
Maryam Elahi ◽  
Arash Khojasteh ◽  
Saedeh Atarbashi

2005 ◽  
Vol 63 (8) ◽  
pp. 1227-1230 ◽  
Author(s):  
Ioannis Dimitrakopoulos ◽  
Konstantinos Psomaderis ◽  
Anthoula Asimaki ◽  
Stiliani Papaemanouel ◽  
Dimitris Karakasis

2016 ◽  
Vol 2016 ◽  
pp. 1-3
Author(s):  
Karpagavalli Shanmugasundaram ◽  
Sathasiva Subramanian ◽  
Vaishnavi Vedam ◽  
Vimal Kumar

Carcinoma arising primarily from the jaw is a locally aggressive lesion with poor prognosis. Primary intraosseous carcinoma (PIOC) lesion develops either de novo remnants of odontogenic epithelium, odontogenic cyst/tumor, epithelium remnants, or/and salivary gland residues. We describe very interesting case of primary intraosseous carcinoma of mandible. This extensive lesion was sent for oncological opinion and further management. Due to the uncertainty of diagnostic criteria of PIOC, only few cases of this lesion with a typical presentation have been reported. This article presents a case of primary intraosseous carcinoma with a unique appearance and detailed review stating its clinicopathological correlation.


2020 ◽  
Vol 16 (2) ◽  
Author(s):  
Federico Lari ◽  
Fabrizio Giostra ◽  
Stefania Guerrini

Treatment of de novo acute hypoxic respiratory failure is not recommended by current Non-Invasive Ventilation (NIV) guidelines as it does not seem to improve patients outcome. Many cases of acute hypoxic respiratory failure associated with Sars-Cov2 infection (SARI) have been observed during Sars-Cov2 pandemic. So far, data are missing regarding the use of NIV, but a correct identification of subgroups of patients based on different clinical, patho-physiological and radiological features, might be helpful for stratifying patients and choosing the correct respiratory support (invasive versus non-invasive). In case of NIV appliance, risk of environmental virus dispersion is particularly elevated; therefore, extreme attention by operators is required.


Author(s):  
L Gallego ◽  
L Junquera ◽  
P Villarreal ◽  
MF Fresno

2014 ◽  
Vol 26 (2) ◽  
pp. 182
Author(s):  
KotyaNaik Maloth ◽  
VinayKumar Reddy Kundoor ◽  
Srikanth kodangal ◽  
Nagajyothi Meka

Author(s):  
Aline Byrnes ◽  
Elsa E. Ramos ◽  
Minoru Suzuki ◽  
E.D. Mayfield

Renal hypertrophy was induced in 100 g male rats by the injection of 250 mg folic acid (FA) dissolved in 0.3 M NaHCO3/kg body weight (i.v.). Preliminary studies of the biochemical alterations in ribonucleic acid (RNA) metabolism of the renal tissue have been reported recently (1). They are: RNA content and concentration, orotic acid-c14 incorporation into RNA and acid soluble nucleotide pool, intracellular localization of the newly synthesized RNA, and the specific activity of enzymes of the de novo pyrimidine biosynthesis pathway. The present report describes the light and electron microscopic observations in these animals. For light microscopy, kidney slices were fixed in formalin, embedded, sectioned, and stained with H & E and PAS.


Author(s):  
M. Shlepr ◽  
R. L. Turner

Calcification in the echinoderms occurs within a limited-volume cavity enclosed by cytoplasmic extensions of the mineral depositing cells, the sclerocytes. The current model of this process maintains that the sheath formed from these cytoplasmic extensions is syncytial. Prior studies indicate that syncytium formation might be dependent on sclerocyte density and not required for calcification. This model further envisions that ossicles formed de novo nucleate and grow intracellularly until the ossicle effectively outgrows the vacuole. Continued ossicle growth occurs within the sheath but external to the cell membrane. The initial intracellular location has been confirmed only for elements of the echinoid tooth.The regenerating aboral disc integument of ophiophragmus filograneus was used to test the current echinoderm calcification model. This tissue is free of calcite fragments, thus avoiding questions of cellular engulfment, and ossicles are formed de novo. The tissue calcification pattern was followed by light microscopy in both living and fixed preparations.


2019 ◽  
Vol 476 (22) ◽  
pp. 3521-3532
Author(s):  
Eric Soubeyrand ◽  
Megan Kelly ◽  
Shea A. Keene ◽  
Ann C. Bernert ◽  
Scott Latimer ◽  
...  

Plants have evolved the ability to derive the benzenoid moiety of the respiratory cofactor and antioxidant, ubiquinone (coenzyme Q), either from the β-oxidative metabolism of p-coumarate or from the peroxidative cleavage of kaempferol. Here, isotopic feeding assays, gene co-expression analysis and reverse genetics identified Arabidopsis 4-COUMARATE-COA LIGASE 8 (4-CL8; At5g38120) as a contributor to the β-oxidation of p-coumarate for ubiquinone biosynthesis. The enzyme is part of the same clade (V) of acyl-activating enzymes than At4g19010, a p-coumarate CoA ligase known to play a central role in the conversion of p-coumarate into 4-hydroxybenzoate. A 4-cl8 T-DNA knockout displayed a 20% decrease in ubiquinone content compared with wild-type plants, while 4-CL8 overexpression boosted ubiquinone content up to 150% of the control level. Similarly, the isotopic enrichment of ubiquinone's ring was decreased by 28% in the 4-cl8 knockout as compared with wild-type controls when Phe-[Ring-13C6] was fed to the plants. This metabolic blockage could be bypassed via the exogenous supply of 4-hydroxybenzoate, the product of p-coumarate β-oxidation. Arabidopsis 4-CL8 displays a canonical peroxisomal targeting sequence type 1, and confocal microscopy experiments using fused fluorescent reporters demonstrated that this enzyme is imported into peroxisomes. Time course feeding assays using Phe-[Ring-13C6] in a series of Arabidopsis single and double knockouts blocked in the β-oxidative metabolism of p-coumarate (4-cl8; at4g19010; at4g19010 × 4-cl8), flavonol biosynthesis (flavanone-3-hydroxylase), or both (at4g19010 × flavanone-3-hydroxylase) indicated that continuous high light treatments (500 µE m−2 s−1; 24 h) markedly stimulated the de novo biosynthesis of ubiquinone independently of kaempferol catabolism.


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