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Biology subjects

Noakes, P. G.

Publications and source records attributed to Noakes, P. G..

2 recordsLinked to original sources

Oligodendrocyte Enriched Brain Organoids Reveal Impaired Oligodendroglial Maturation and Altered Neural Network Activity in Down Syndrome

Individuals with Down syndrome (DS) display developmental delay, intellectual disability, premature brain ageing, and an increased risk of Alzheimer-like neurodegeneration. Although the neuropathology of the postnatal and adult DS brain has been widely described, it remains unclear how trisomy 21 alters early human neural and glial development. Here, we used human oligodendrocyte enriched brain organoids derived from trisomic and euploid iPSCs to define the cellular, functional, and molecular consequences of trisomy 21 during early brain development. Trisomic organoids exhibited an early growth delay, reduced oligodendroglial specification, and impaired oligodendrocyte maturation, resulting in decreased myelination. These defects were accompanied by increased astroglial output and delayed neuronal maturation. At the functional level, trisomic organoids showed elevated spontaneous network activity, but failed to mount normal coordinated responses to pharmacological stimulation, consistent with abnormal neural circuit development. Bulk RNA sequencing revealed the strongest transcriptomic dysregulation occurs at early neural and glial specification. Together, these findings show that trisomy 21 disrupts early developmental stages and establish oligodendrocyte enriched brain organoids as a human model to investigate the developmental origins of white matter and network dysfunction in DS.

cell biology↗

A Potential Role of Postsynaptic Limitation in Activity-Dependent Homeostasis

The distribution of neurotransmitter release at amphibian neuromuscular junctions (NMJ) is characterised by a shift from Poisson to a tight binomial distribution as calcium concentration is increased. Despite advances in our understanding of neurotransmission, a paradox remains about how the large number of active zones (AZs) that contribute to release have such a low variance, resulting in a tight binomial distribution. Muscle-specific sodium channel-blocking neurotoxins have allowed us to examine the release characteristics when the unit size of transmitter release (quantal size) is not altered. Our present study has compared the neurotransmitter release characteristics when D-tubocurarine (curare) or the Na-channel blocking conotoxin (-conotoxin GIIIB) was used as the extracellular calcium concentration was increased. Quantal neurotransmitter release from toad iliofibularis motor nerve terminals was examined using intracellular electrodes and focal extracellular electrodes. Motor nerve terminal branches for recordings were located using DiOC2(5)-fluorescent imaging. Muscle action potentials were suppressed by using -conotoxin GIIIB (-CgTx GIIIB, 2.0 x 10-6 M) or curare, 6.5 x 10-6 M. Under -CgTx GIIIB, the maximum transmitter release reached was 25 quanta at high extracellular calcium concentration (2.1 mM); conversely, under curare, quantal content reached 148 quanta (P=0.0067). Using binomial analysis, it was found that this quantal increase was due to a significant increase in the number of release sites n rather than the average probability of release p. Based on these observations, along with analyses of ECP shape and duration, we propose a mechanism in which a fast autoinhibitory response (< 5 ms from the nerve terminal impulse) limits the maximum level of depolarisation by voltage-dependent regulation of the acetylcholine receptor (AChR) channel conductance.

neuroscience↗