Diagnostic ultrasound enhances, then reduces, exogenously induced brain activity of mice
Frontiers in Human Neuroscience,
Год журнала:
2025,
Номер
18
Опубликована: Фев. 11, 2025
Transcranially
delivered
diagnostic
ultrasound
(tDUS)
applied
to
the
human
brain
can
modulate
those
brains
such
that
they
became
more
receptive
external
stimulation
relative
sham
exposure.
Here,
we
sought
directly
measure
effect
of
tDUS
on
mouse
activity
subjected
an
stimulation—a
blinking
light.
Using
electrocorticography,
observed
a
substantial
increase
in
median
due
plus
light
baseline
and
Subsequent
decreased
after
cessation
but
with
continuation
light,
though
it
remained
above
demonstrated
by
mice
exposed
only
In
separate
experiment,
showed
alone,
without
had
no
observable
activity,
upon
its
cessation,
decreased.
These
results
demonstrate
simultaneous
exposure
receptivity
visual
cortex
prior
reduce
subsequent
activity.
each
case,
these
are
consistent
published
data.
Our
echo
do
not
explain
them,
since
their
test
subjects
received
less
intense
than
did
our
mice.
Given
near
ubiquity
systems,
further
progress
along
this
line
research
could
one
day
lead
widespread
use
intentionally
function
during
exogenous
stimulation.
Язык: Английский
Novel NIBS in psychiatry: Unveiling TUS and TI for research and treatment
Brain and Neuroscience Advances,
Год журнала:
2025,
Номер
9
Опубликована: Март 1, 2025
Mental
disorders
pose
a
significant
global
burden
and
constitute
major
cause
of
disability
worldwide.
Despite
strides
in
treatment,
substantial
number
patients
do
not
respond
adequately,
underscoring
the
urgency
for
innovative
approaches.
Traditional
non-invasive
brain
stimulation
techniques
show
promise,
yet
grapple
with
challenges
regarding
efficacy
specificity.
Variations
mechanistic
understanding
reliability
among
methods
are
common,
limited
spatial
precision
physical
constraints
hindering
ability
to
target
subcortical
areas
often
implicated
disease
aetiology.
Novel
such
as
transcranial
ultrasonic
temporal
interference
have
gained
notable
momentum
recent
years,
possibly
addressing
these
shortcomings.
Transcranial
(TUS)
offers
exceptional
deeper
penetration
compared
conventional
electrical
magnetic
techniques.
Studies
targeting
diverse
array
regions
shown
its
potential
affect
neuronal
excitability,
functional
connectivity
symptoms
psychiatric
depressive
disorder.
Nevertheless,
planning
acoustic
interactions
skull
must
be
tackled
widespread
adoption
research
potentially
clinical
settings.
Similar
stimulation,
(TI)
traditional
albeit
requiring
comparatively
higher
current
equivalent
neural
effects.
Promising
still
sparse
highlights
TI’s
selectively
modulate
activity,
showing
utility
psychiatry.
Overall,
like
only
open
new
avenues
but
also
hold
effective
treatments
However,
realising
their
full
necessitates
practical
optimising
application
effectively.
Язык: Английский
Parameter optimisation for mitigating somatosensory confounds during transcranial ultrasonic stimulation
bioRxiv (Cold Spring Harbor Laboratory),
Год журнала:
2025,
Номер
unknown
Опубликована: Март 19, 2025
Transcranial
ultrasonic
stimulation
(TUS)
redefines
what
is
possible
with
non-invasive
neuromodulation
by
oaering
unparalleled
spatial
precision
and
flexible
targeting
capabilities.
However,
peripheral
confounds
pose
a
significant
challenge
to
reliably
implementing
this
technology.
While
auditory
during
TUS
have
been
studied
extensively,
the
somatosensory
confound
has
overlooked
thus
far.
It
will
become
increasingly
vital
quantify
manage
as
field
shifts
towards
higher
doses,
more
compact
devices,
frequent
through
temple
where
co-stimulation
pronounced.
Here,
we
provide
systematic
characterisation
of
TUS.
We
also
identify
conditions
under
which
can
be
mitigated
most
eaectively
mapping
confound-parameter
space.
Specifically,
investigate
dose-response
eaects,
pulse
shaping
characteristics,
transducer-specific
parameters.
demonstrate
that
avoiding
near-field
intensity
peaks
in
scalp,
spreading
energy
across
greater
area
ramping
envelope,
delivering
equivalent
doses
via
longer,
lower-intensity
pulses
rather
than
shorter,
higher-intensity
pulses.
Additionally,
repetition
frequencies
fundamental
reduce
eaects.
Through
our
parameter
space,
find
preliminary
evidence
particle
displacement
(strain)
may
primary
biophysical
driving
force
behind
co-stimulation.
This
study
provides
actionable
strategies
minimise
confounds,
support
thorough
experimental
control
required
unlock
full
potential
for
scientific
research
clinical
interventions.
Tactile,
thermal,
even
painful
occur
TUS.Confounds
&
parameters.Valid
replicable
requires
confounds.Particle
confounds.
Язык: Английский
The promises and challenges of neurotechnology to improve human health and cognition
PLoS Biology,
Год журнала:
2024,
Номер
22(10), С. e3002903 - e3002903
Опубликована: Окт. 30, 2024
This
PLOS
Biology
collection
explores
the
present
and
possible
futures
of
neurotechnology
to
improve
human
health
cognition,
as
well
scientific,
technological
ethical
challenges
they
face.
Язык: Английский