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Updated: Nov 21, 2025

Radiation Treatment of Organotypic Cultures from Submandibular and Parotid Salivary Glands Models Key In Vivo Characteristics
Published on: May 17, 2019
Inhibition of Aurora Kinase B activity disrupts development and differentiation of salivary glands
Abeer K Shaalan1, Tathyane H N Teshima2,3, Abigail S Tucker2
1Centre for Host-Microbiome Interactions, Guy's Hospital, Faculty of Dentistry, Oral & Craniofacial Sciences, King's College London, London, UK. shaalan.abeer@kcl.ac.uk.
Abstract:
Little is known about the key molecules that regulate cell division during organogenesis. Here we determine the role of the cell cycle promoter aurora kinase B (AURKB) during development, using embryonic salivary glands (E-SGs) as a model. AURKB is a serine/threonine kinase that regulates key events in mitosis, which makes it an attractive target for tailored anticancer therapy. Many reports have elaborated on the role of AURKB in neoplasia and cancer; however, no previous study has shown its role during organ development. Our previous experiments have highlighted the essential requirement for AURKB during adult exocrine regeneration. To investigate if AURKB is similarly required for progression during embryonic development, we pharmacologically inhibited AURKB in developing submandibular glands (SMGs) at embryonic day (E)13.5 and E16.5, using the highly potent and selective drug Barasertib. Inhibition of AURKB interfered with the expansion of the embryonic buds. Interestingly, this effect on SMG development was also seen when the mature explants (E16.5) were incubated for 24 h with another cell cycle inhibitor Aphidicolin. Barasertib prompted apoptosis, DNA damage and senescence, the markers of which (cleaved caspase 3, γH2AX, SA-βgal and p21, respectively), were predominantly seen in the developing buds. In addition to a reduction in cell cycling and proliferation of the epithelial cells in response to AURKB inhibition, Barasertib treatment led to an excessive generation of reactive oxygen species (ROS) that resulted in downregulation of the acinar differentiation marker Mist1. Importantly, inhibition of ROS was able to rescue this loss of identity, with Mist1 expression maintained despite loss of AURKB. Together, these data identify AURKB as a key molecule in supporting embryonic development and differentiation, while inhibiting senescence-inducing signals during organogenesis.
Insights
Aurora kinase B (AURKB) is crucial for embryonic salivary gland development and differentiation. Inhibiting AURKB causes DNA damage, apoptosis, and hinders organogenesis, but blocking reactive oxygen species rescues differentiation.
Area of Science:
- Developmental Biology
- Cell Biology
- Molecular Biology
Background:
- The role of cell cycle regulators in organogenesis is not well understood.
- Aurora kinase B (AURKB) is a key mitotic regulator with established roles in cancer but not in embryonic development.
- Previous work indicated AURKB's importance in adult exocrine regeneration.
Purpose of the Study:
- To investigate the role of AURKB in embryonic organ development using the salivary gland as a model.
- To determine if AURKB inhibition impacts embryonic salivary gland bud expansion and differentiation.
Main Methods:
- Pharmacological inhibition of AURKB using Barasertib in embryonic day 13.5 and 16.5 mouse submandibular glands (SMGs).
- Assessment of cell cycle progression, apoptosis, DNA damage, senescence, and reactive oxygen species (ROS) generation.
- Evaluation of acinar differentiation marker (Mist1) expression and the effect of ROS inhibition.
Main Results:
- AURKB inhibition significantly impaired embryonic bud expansion and reduced cell cycling and proliferation.
- Barasertib treatment induced apoptosis, DNA damage, and senescence in developing SMG buds.
- AURKB inhibition led to excessive ROS generation, downregulating the differentiation marker Mist1.
- Inhibition of ROS rescued Mist1 expression, maintaining acinar cell identity.
Conclusions:
- AURKB is essential for embryonic salivary gland development, supporting cell proliferation and differentiation.
- AURKB activity is critical for preventing DNA damage, apoptosis, and senescence during organogenesis.
- AURKB regulates acinar cell differentiation, partly through managing ROS levels.

