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Biology subjects

Rawat, S. S.

Publications and source records attributed to Rawat, S. S..

2 recordsLinked to original sources

AN OPTIMIZED METHOD TO DIFFERENTIATE HL60 CELLS INTO NEUTROPHIL-LIKE CELLS

The HL60 promyelocytic leukemia cell line is widely used to investigate neutrophil biology due to its genetic tractability and accessibility. HL60 cells can be differentiated into neutrophil-like cells using all-trans retinoic acid (ATRA) or dimethyl sulfoxide (DMSO) treatment. However, these approaches produce cells that lack critical features of mature granulocytes, such as robust chemotaxis with ATRA treatment or multilobed nuclear morphology with DMSO treatment. To overcome these limitations, we developed a sequential differentiation protocol - ATRA for one day followed by DMSO for four days (A1D4) - which yields neutrophil-like cells that more faithfully recapitulate the morphology and functionality of mature human neutrophils. A1D4-differentiated HL60 cells display segmented nuclei with low lamin A/C expression and demonstrate strong chemotactic, oxidative burst, and phagocytic activity. This protocol combines the advantages of individual compounds, producing cells that closely mimic primary neutrophils in both phenotype and function. SUMMARY SENTENCEThe authors provide an improved method to differentiate HL60 cells into neutrophil-like cells that faithfully recapitulates the morphology and functionality of mature human neutrophils.

immunology↗

Salicylic acid represses primary root growth through the Glucose-Target of Rapamycin-E2Fa pathway in Arabidopsis

In addition to their role as energy sources, sugars function as signaling molecules, modulating gene expression. Plants perceive nutrient availability and translate this information into cellular signals, to trigger various developmental responses, including primary root growth. In particular, glucose stimulates root development by activating the root meristem. Recent studies have documented the role of the defense hormone, salicylic acid (SA) as a negative regulator of root growth and developmental processes. Here, we characterized the modulation of primary root growth by the cross-talk of glucose and SA. Our results indicate that auxin is a critical mediator of SA-induced root growth inhibition. Attenuation of auxin signaling or transport pathways alters the inhibitory effect of SA on root growth. Moreover, we provide evidence for the involvement of the role of Target of Rapamycin (TOR) signaling in SA-induced root growth repression. Furthermore, SA negatively regulates the expression of E2Fa, a key transcription factor required for cell cycle progression and root growth and development. Our findings elucidate mechanism(s) whereby SA, through the interconnected glucose, auxin and TOR signaling pathways, inhibits primary root growth.

plant biology↗