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Stone cell formation in the pedicel of pears and apples

Planta, 2023
For the first time, stone cells in pear and apple pedicel were studied. The lignification of the pedicel outer part was correlated with flesh, and the secondary cell wall biosynthesis genes were activated. Fruit pedicels act as bridges between the fruit and the shoot.
Nobutaka Mitsuda   +2 more
exaly   +3 more sources

Myocardial cell damage in “stone hearts”

Journal of Molecular and Cellular Cardiology, 1974
Abstract The “stone heart” syndrome is a rare pattern of irreversible cardiac arrest in systole during or immediately after total cardiopulmonary bypass. In 13 cases reported a marked left ventricular hypertrophy with conduction disturbances was present in all, and generally a high pressure gradient across a stenotic aortic valve was present.
G, Baroldi   +5 more
openaire   +2 more sources

Cell-Crystal Interactions and Kidney Stone Formation

Nephron, 1998
<i>Background:</i> Renal tubular fluid in the distal nephron is supersaturated with calcium and oxalate ions that nucleate to form crystals of calcium oxalate monohydrate (COM), the most common crystal in renal stones. How these nascent crystals are retained in the nephron to form calculi in certain individuals is not known.
J C, Lieske, S, Deganello, F G, Toback
openaire   +2 more sources

Stone Cell Development in Pear

2019
Pear (Pyrus spp.) is one of the most important deciduous fruit trees grown in the world. The genus Pyrus belongs to the subfamily Pomoideae of the family Rosaceae. Stone cells (sclereids), heavily lignified cells present in fruit flesh, serve as a distinctive trait of pear fruits.
Xi Cheng, Yongping Cai, Jinyun Zhang
openaire   +1 more source

Crystal-cell interaction in the pathogenesis of kidney stone disease

Current Opinion in Urology, 2002
Renal stone formation depends not so much on the formation of crystals, but on their retention in the kidney. Evidence has emerged that crystal retention is caused predominantly by the adherence of crystals to the epithelial cells lining the renal tubules.
Marino, Asselman   +1 more
openaire   +2 more sources

The development of stone cells in Japanese pear fruit

The Journal of Horticultural Science and Biotechnology, 2008
The development of stone cells in Japanese pear (Pyrus serotina cv. Shinseiki) fruit was investigated over a single season to study the processes of stone cell differentiation and lignin accumulati...
N. Nii, T. Kawahara, Y. Nakao
openaire   +1 more source

New Frontiers in Stone Disease: Immune Cells

Journal of Urology, 2016
APPROXIMATELY 5% to 10% of the general population will have a kidney stone in their lifetime with recurrence within 5 years of the first stone event in up to 50%. 1 Furthermore the incidence of stone disease appears to be increasing with global warming, migration to urban areas, obesity and dietary patterns, including high sodium and high fructose corn
openaire   +2 more sources

TCRAFT: A Rosetta Stone for T cell receptors

Immunity
Defining the antigen specificity of T cell receptors (TCRs) remains a significant barrier to understanding adaptive immunity in various pathologies. In this issue of Immunity, Gaglione et al. report the development of TCRAFT, a novel platform that enables facile construction of vast TCR sequence libraries that can be screened against hundreds of ...
Christopher A. Polera, Alex M. Jaeger
openaire   +2 more sources

Stem Cell Migration: A Quintessential Stepping Stone to Successful Therapy

Current Stem Cell Research & Therapy, 2007
Migration is an innate and fundamental cellular function that enables hematopoietic stem cells (HSCs) and endothelial progenitors (EPCs) to leave the bone marrow, relocate to distant tissue, and to return to the bone marrow. An increasing number of studies demonstrate the widening scope of the therapeutic potential of both HSCs and endothelial cells ...
Corinna Weidt   +7 more
openaire   +2 more sources

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