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BEGIN:VEVENT
SUMMARY:Seminar: Piezoelectric Ceramic: Current and Emerging Process Tec
hnology
LOCATION:Warnock Engineering Building - John and Marva (WEB)
DTSTART;TZID=America/Denver:20240328T140000
DTEND;TZID=America/Denver:20240328T150000
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URL:https://mse.utah.edu/lecture-in-materials/
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Lin
k: https://mse.utah.edu/lecture-in-materials/
Piezoelectric ceram
ic industry is a 1.4 billion dollar market with applications as varied a
s sonar and navigation systems for the US Navy to medical ultrasonics to
watch alarms. The ceramic formulation and processing not only requires
structural integrity\, but also a high efficiency electrical characteris
tic that can convert electrical signal to mechanical energy\, or mechani
cal to electrical signal. Piezoceramic technology continues to evolve wi
th material formulation and processing. Our presentation will provide an
overview of piezoelectric ceramic\, a brief technology of how it works
\, piezo applications\, current manufacturing process and the next genera
tion technology of piezo textured ceramic.
Angie Richardson gradu
ated from the University of MN\, Institute of Technology with a metallur
gical engineering degree. After starting in materials research at the Id
aho National Lab\, Angie spent 40 years in the ceramic manufacturing ind
ustry in career roles of process engineering\, engineering management an
d operations director for a ceramic-acoustic facility employing 200 peop
le. The SLC facility (now L3) produced over one million ceramic componen
ts annually for commercial US and international markets and was a critic
al supplier to the US Government sonar industry. Angie was a key technic
al expert to an Israel based medical start-up to define a PMN-PT (lead m
agnesium niobate-lead titanate) composition that went on to be a compone
nt of a cancer treatment used worldwide. Angie is currently a consultant
in the piezoceramic industry for the US Navy and commercial industry
CATEGORIES:College of Engineering
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BEGIN:VEVENT
SUMMARY:IEEE Workshop on Microelectrics and Electron Devices (WMED)
LOCATION:Stueckle Sky Center at Boise State University
DTSTART;VALUE=DATE:20240329
DTEND;VALUE=DATE:20240330
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DTSTAMP:20231016T162507Z
DESCRIPTION:Campus Wide Event: Yes
January 16\, 2024: Manuscript
submission deadline
March 22\, 2024: Advance registration deadline
CATEGORIES:Electrical & Computer Engineering
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BEGIN:VEVENT
SUMMARY:Biomedical Engineering Seminar - Dr. Karen L. Troy
LOCATION:Sorenson Molecular Biotechnology Building - James LeVoy (SMBB)
DTSTART;TZID=America/Denver:20240329T114500
DTEND;TZID=America/Denver:20240329T131500
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URL:https://www.wpi.edu/people/faculty/ktroy
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Room Name/Number:
2650
Contact Name: Taylor Wilkes
Contact Email: taylor.wilkes@uta
h.edu
Campus Wide Event: Yes
Link: https://www.wpi.edu/people/facu
lty/ktroy
BIOENGINEERING ELEVATED TALK
CELEBRATING
50 YEARS OF BIOMEDICAL ENGINEERING AT THE UNIVERSITY OF UTAH
Maybe I just tied my shoes too tight: Imaging and computational modeling
to understand metatarsal bone stress injury
\;
Karen L. Troy\, PhD\, P
rofessor and Associate Department Head of Biomedical Engineering\, Worce
ster Polytechnic Institute
In person in SMBB 2650!
Abstract: Bone stress injuries (the most severe of which ar
e stress fractures) are among the most common types of injury in enduran
ce athletes and military professionals. \; The metatarsal bones in t
he feet are frequently injured\, requiring 2-3 months of rest before ret
urning to work or sport. Aside from limiting training load –\; whic
h directly contradicts training and work requirements for performance
8211\; coaches and doctors do not know how to prevent these injuries. On
top of that\, feet are complicated and there is no consensus about how
to biomechanically model them. \; Our research investigates the infl
uence of bone structure\, mechanics\, and biomechanical loading environm
ent in the feet to better understand why some people get metatarsal bone
stress injuries. Our long term goal is to provide evidence-based person
alized recommendations on how a person can adjust their training volume
and biomechanics to reduce their risk of injury.
Bio: Karen L. Tro
y\, PhD\, is a Professor of Biomedical Engineering with an affiliate app
ointment in Mechanical Engineering at Worcester Polytechnic Institute. S
he earned dual BS degrees from Washington University in St. Louis in Sys
tems Science and Mathematics and Biomedical Engineering. \; She comp
leted her PhD in Biomedical Engineering at the University of Iowa in the
Orthopaedic Biomechanics Laboratory\, where she worked on large animal
surgical models (emus). Dr. Troy completed a postdoc and served on the f
aculty at the University of Illinois at Chicago before moving to Worcest
er Polytechnic Institute in 2013. She currently directs the Musculoskele
tal Biomechanics Lab (MBL)\, which studies how mechanical loads (or lack
thereof) can be both beneficial and harmful to bone\, and aims to under
stand what conditions influence whether a load helps or hurts a person.
Through her work in mechanistic clinical trials\, she has also developed
\, refined\, and applied computational techniques to noninvasively measu
re skeletal structure\, loading\, and mechanical behavior. Dr. Troy̵
7\;s research addresses three different aspects of skeletal health and i
ts interaction with mechanical loading environment: (1) bone health afte
r spinal cord injury (SCI)\; (2) mechanisms governing bone adaptation in
healthy adults\; and (3) bone stress injury in running athletes. \;
CATEGORIES:Biomedical Engineering
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BEGIN:VEVENT
SUMMARY:PhD Dissertation Defense - Nicholas Posselli
DTSTART;TZID=America/Denver:20240329T150000
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A \;Doctor \;of \;
Philosophy \;Dissertation \;Defense \;Entitled: \;
160\;
Head-Mounting Eye Surgery Robots for Passive Compensation of Pa
tient Motion During Subretinal Injection
\;
By: \;Nichola
s Posselli
\;
Date: Friday 29 March 2024
Time: 3:00 PM
Location: MEK 3350 and Zoom
Zoom meeting ID: 915 2907 4465
Passcod
e (for Zoom): 106515
\;
Committee \;Members: \;
Dr
. Jake Abbott (Chair)
Dr. Stephen Mascaro
Dr. Haohan Zhang
Dr.
Alan Kuntz
Dr. Paul Bernstein
\;
Project \;Summary
0\;
Gene and stem-cell therapies hold the potential to restore lost v
ision or prevent vision loss in patients with retinal diseases. However
\, measures of effectiveness in many up-and-coming therapeutic protocols
are confounded by the surgeon'\;s ability to precisely position the s
urgical instrument. \;Patient motion causes additional movement betw
een the instrument and the eye that must be compensated for. Patients un
dergoing eye surgery are typically placed under conscious sedation\, in
which they are calm and drowsy but are often still aware of their enviro
nment and able to respond. Under conscious sedation\, head motion can re
sult from breathing\, snoring\, talking\, and other actions. Various rob
otic systems have been proposed to improve the precision of eye surgery
\, but\, to date\, little attention has been paid to patient motion. Benc
htop experiments with artificial or enucleated (i.e.\, \;ex vivo) ey
es\, which are typical in the development of robotic systems\, rarely ca
pture the effect of patient motion.
This dissertation presents method
s for noninvasively mounting one or more robots to a patient'\;s head
to passively compensate for patient motion. We introduce two design con
cepts for head mounting and demonstrate that head mounting provides an o
rder-of-magnitude reduction of within-breathing-cycle motion of the pati
ent relative to the robot compared to the current standard of care\, whi
le essentially eliminating gross relative motion. Next\, we present a de
vice that mounts an artificial or enucleated eye to a set of swim goggle
s worn by a human volunteer. The device enables patient motion to be con
sidered in evaluations of eye-surgery robots\, affords a more realistic
evaluation of robotic systems that use head-immobilization or head-mount
ing methods\, and enables the eye to be rotated with a rotational stiffn
ess that approximates the elastic behavior of an anesthetized patient
9\;s eye. Finally\, we use a high-precision head-mounted surgical robot
to conduct a hybrid \;ex/in vivo \;subretinal-injection study th
at is the first to demonstrate a bleb-formation success rate that is hig
her than the manual success rate of surgeons\, once head motion is consi
dered.
\;
Everyone \;is \;Welcome \;to \;Atte
nd \;
CATEGORIES:Mechanical Engineering
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BEGIN:VEVENT
SUMMARY:Seminar: "\;Optimizing Edge AI: Enhancing Efficiency\, Accur
acy\, and Security/ Privacy through Cross-Layer Innovations"\; by Fa
rshad Firouzi
LOCATION:Warnock Engineering Building - John and Marva (WEB) and Zoom
DTSTART;TZID=America/Denver:20240329T150500
DTEND;TZID=America/Denver:20240329T155500
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Room Name/Number: WEB 1250
Campus Wide Event: Yes<
br>
Register to receive Zoom link.
CATEGORIES:Electrical & Computer Engineering
UID:http://uid.trumba.com/event/173686365
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BEGIN:VEVENT
SUMMARY:Summer 2024 Open Enrollment
DTSTART;VALUE=DATE:20240401
DTEND;VALUE=DATE:20240402
X-MICROSOFT-CDO-ALLDAYEVENT:TRUE
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DTSTAMP:20230314T162310Z
DESCRIPTION:Campus Wide Event: Yes
Link: https://registrar.utah.edu/a
cademic-calendars/index.php
CATEGORIES:Academic Deadlines
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BEGIN:VEVENT
SUMMARY:PhD Proposal Defense - Elana Renae Lapins
LOCATION:Warnock Engineering Building - John and Marva (WEB)
DTSTART;TZID=America/Denver:20240401T140000
DTEND;TZID=America/Denver:20240401T170000
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Room Name/Number: WEB 3780
Campus Wide Event: Yes
Innovative
\, data-driven approaches for ankle osteoarthritis assessment using stat
istical shape modeling\, weight-bearing computed tomography\, and machin
e learning
Zoom Meeting ID: 993 9924 3063\, P
asscode: 84121
CATEGORIES:Biomedical Engineering
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END:VEVENT
BEGIN:VEVENT
SUMMARY:Neal Patwari Seminar: "\;Better Systems Models Help Design W
ireless and Equitable Systems"\;
DTSTART;TZID=America/Denver:20240401T150500
DTEND;TZID=America/Denver:20240401T155500
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DTSTAMP:20240326T115217Z
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Register to receive the Zoom l
ink.
CATEGORIES:Electrical & Computer Engineering
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BEGIN:VEVENT
SUMMARY:Master Thesis Defense - Shawn C. Weeks
DTSTART;TZID=America/Denver:20240404T110000
DTEND;TZID=America/Denver:20240404T120000
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A \;Masters of Science The
sis \;Defense: \;
\;
Static and fatigue characterizat
ion of mode I fracture in adhesively bonded composites based on the J-in
tegral approach
\;
By: \;Shawn C. Weeks
\;
Dat
e: Thursday 4 April 2024
Time: 11:00 AM
Location: MEK 3350 and Zoo
m
Zoom: \;utah.zoo
m.us…\;
Meeting ID: \;998 0524 9105
Meeting Password:
\;353501
\;
Committee \;Members: \;
Dr. Micha
el Czabaj (Chair)
Dr. Dan Adams
Dr. James Ratcliffe
\;
Project \;Summary \;
\;
Bonding composite components
\, as an alternative to traditional mechanical fasteners\, holds great pr
omise to reduce the overall cost and time needed to design\, manufacture
\, and certify future aerospace vehicles. Before the engineering communi
ty can widely accept adhesive bonding\, new test methods must be develop
ed to characterize the fracture resistance of adhesive bondlines. The J-
integral method has recently emerged as a promising alternative to more
traditional linear-elastic fracture approaches for characterization of f
racture toughness\, and it appears ideal for (quasi)ductile adhesives th
at exhibit a large fracture process zone (FPZ) at the onset of fracture.
Several outstanding challenges preclude the use of the J-integral appro
ach for characterization of mode I fracture and fatigue using adhesively
bonded double cantilever beam (DCB) composite specimens. This study dev
eloped new test methods to measure the mode I nonlinear fracture toughne
ss \;(JIc)\, traction separation law (TSL)\, and fatigue crack growt
h rate \;(da/dN). A framework for a “\;J-controlled”\; fat
igue test that does not require explicit knowledge of crack extension wa
s developed to help accelerate fatigue crack growth rate characterizatio
n. The results of this study provide further groundwork for a more accur
ate test method for characterizing adhesively bonded composites in quasi
-static or fatigue loading using the J-integral approach. \;
0\;
Everyone \;is \;Welcome \;to \;Attend \;
CATEGORIES:Mechanical Engineering
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SUMMARY:Spring 2024 Second Half Last Day to Withdraw From Classes
DTSTART;VALUE=DATE:20240405
DTEND;VALUE=DATE:20240406
X-MICROSOFT-CDO-ALLDAYEVENT:TRUE
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DTSTAMP:20230314T162331Z
DESCRIPTION:Campus Wide Event: Yes
Link: https://registrar.utah.edu/a
cademic-calendars/index.php
CATEGORIES:Academic Deadlines
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BEGIN:VEVENT
SUMMARY:Biomedical Engineering Seminar - Dr. Jacob George
LOCATION:Sorenson Molecular Biotechnology Building - James LeVoy (SMBB)
DTSTART;TZID=America/Denver:20240405T114500
DTEND;TZID=America/Denver:20240405T131500
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URL:https://neurorobotics.ece.utah.edu/
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Room Name/Number:
2650
Contact Name: Taylor Wilkes
Contact Email: taylor.wilkes@uta
h.edu
Campus Wide Event: Yes
Link: https://neurorobotics.ece.utah.
edu/
BIOENGINEERING ELEVATED TALK
CELEBRATING 50 YE
ARS OF BIOMEDICAL ENGINEERING AT THE UNIVERSITY OF UTAH
The F
orce is with U: Turning Luke Skywalker’\;s Bionic Arm from Sci-Fi D
ream to Real-World Impact
\;
Jacob A. George\, PhD\, Assistant Professor
of Electrical &\; Computer Engineering\, Physical Medicine &\; Re
habilitation\, University of Utah
In person in SMBB 26
50!
Abstract: In 2019\, Dr. George and fellow researcher
s at the U made waves with the "\;LUKE Arm"\; (named after the r
obotic hand given to Luke Skywalker in The Empire Strikes Back)\, a pros
thetic arm that has the ability to feel objects by transmitting the appr
opriate signals to the brain. Not only can the arm feel\, but it can be
controlled by the user'\;s thoughts. In this lecture\, George will hi
ghlight this technology and the advances that have taken place since the
ir breakthrough technology was first announced –\; including transl
ation into bionic exoskeletons to aid individuals with paralysis and int
o smartwatches to allow anyone to seamlessly control smart devices and a
ugmented reality by thought.
Bio: Dr. Jacob A. George is an Assist
ant Professor in the Department of Electrical &\; Computer Engineerin
g and the Department of Physical Medicine &\; Rehabilitation at the U
niversity of Utah. He is the director of the Utah NeuroRobotics Lab and
a foundational researcher in the Craig H. Neilsen Rehabilitation Hospita
l. Dr. George received his B.S. in Biomedical Engineering and a Certific
ate in Computational Science and Engineering from The University of Texa
s at Austin in 2016. He then received his M.S. and Ph.D. in Biomedical E
ngineering from the University of Utah in 2018 and 2020\, respectively.
Notable accomplishments include: NSF Graduate Fellowship\, NIH Postdocto
ral Fellowship\, CCTS Outstanding Postdoc Award\, Ripple Neuro Promising
Young Investigator Finalist\, ECE Rising Star Award\, ECE Teaching Awar
d\, Meta Distinguished Faculty Award\, Utah “\;Innovator of the Yea
r”\; Award\, NIH Director’\;s Early Independence Award\, and F
orbes 30 Under 30.
CATEGORIES:Biomedical Engineering
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BEGIN:VEVENT
SUMMARY:Research Update sponsored by ARCS Foundation Utah Chapter
DTSTART;TZID=America/Denver:20240405T120000
DTEND;TZID=America/Denver:20240405T133000
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DTSTAMP:20240306T145301Z
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MORE DETAILS TBA
CATEGORIES:College of Engineering
UID:http://uid.trumba.com/event/171663787
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BEGIN:VEVENT
SUMMARY:PhD Proposal Defense - Yousef Alsanea
DTSTART;TZID=America/Denver:20240405T130000
DTEND;TZID=America/Denver:20240405T140000
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A \;Doctor \;of \;
Philosophy \;Proposal \;Defense \;Entitled: \;
Extrin
sic and Intrinsic Variable Effects on Skull Fracture Patterns
By:
0\;Yousef Alsanea
\;
Date: \;Friday 5 April 2024
Time:
\;1:00pm
Location: \;3350 MEK
\;
Join Zoom Meetin
g: \;utah.zoom.usR
30\;
Meeting ID: \;933 9694 2961
Passcode: \;001820
\;
Committee \;Members: \;
Dr. Brittany Coats (Chair
)
Dr. Tagrid Ruiz-Maldonado
Dr. Ashley Spear
Dr. Jacob Hochalte
r
Dr. Claire Acevedo
\;
Project \;Summary \;
Li
mited understanding of the biomechanics of pediatric head trauma\, as we
ll as large case-by-case variability\, complicates the evaluation of sus
pected child abuse cases. Understanding the relationship between differe
nt fall parameters\, the resultant fracture pattern characteristics\, an
d the mechanisms of injury that lead to unique fractures\, such as bipar
ietal fractures\, can help determine the cause of injury. To address thi
s\, computational modeling is a valuable and effective tool in predictin
g the likelihood of injury from real-world trauma. However\, the challen
ge with computational tools is capturing the natural anatomical variabil
ity in a population and understanding how that variability affects injur
y prediction. This research aims to characterize infant skull fracture p
atterns and provide an understanding of how biparietal fracture patterns
occur. It also seeks to examine the thickness distribution of infant sk
ulls\, creating standardized templates based on age and sex for computat
ional modeling purposes. Furthermore\, the research aims to integrate th
e variability of skull thickness distributions using stochastic reduced
order modeling methods into a framework for simulating skull fractures.&
#160\;
\;
Everyone \;is \;Welcome \;to \;Atte
nd
CATEGORIES:Mechanical Engineering
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BEGIN:VEVENT
SUMMARY:PhD Proposal Defense - Hunor Csala
DTSTART;TZID=America/Denver:20240408T130000
DTEND;TZID=America/Denver:20240408T140000
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A \;Doctor \;of \;
Philosophy \;Proposal \;Defense \;Entitled: \;
Exploi
ting Low-Dimensionality for Data-Driven Cardiovascular Flow Modeling
0\;
By: \;Hunor Csala
\;
Date: \;Monday 8 April 20
24
Time: \;01:00 PM
Location: \;MEK 3350 and Zoom
Zoom:
\;utah.zoom.us…
\;
Meeting ID: 913 6669 2594
Passcode: 176323
\;
Co
mmittee \;Members: \;
Amirhossein Arzani (Chair)
Jacob Hoc
hhalter
Arvind Mohan
Eric Pardyjak
Yongzhi Qu
\;
Pro
ject \;Summary \;
This proposal addresses the theme of levera
ging low-dimensional spaces to augment our understanding and computation
al modeling of cardiovascular flow dynamics. Given the typically high-di
mensional nature of computational and experimental fluid dynamics data\,
the strategic embedding of data into low-dimensional spaces holds signi
ficant potential for data compression\, modal analysis\, denoising\, and
the creation of reduced-order models. Obtaining an appropriate set of l
atent variables is a crucial first step towards most machine learning ap
plications too\, as dealing with big data is challenging. This research
aims to investigate the discovery of suitable latent spaces\, their role
in improving data quality\, and their application in developing explain
able reduced order models for cardiovascular flow applications. The prop
osal has been divided to the following four objectives.
\;
Ev
eryone \;is \;Welcome
CATEGORIES:Mechanical Engineering
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BEGIN:VEVENT
SUMMARY:WIRED Seminar Series: "\;Detecting and Mitigating Hidden Fai
lure Modes in Transitioning Electric Power Grids"\; by Adam Birchfie
ld
LOCATION:Warnock Engineering Building - John and Marva (WEB)
DTSTART;TZID=America/Denver:20240411T110000
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Room Name/Number: Eccles Boardroom
Campus Wide Event: Ye
s
CATEGORIES:Electrical & Computer Engineering
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BEGIN:VEVENT
SUMMARY:Biomedical Engineering Seminar - Dr. Heather Gustafson
LOCATION:Sorenson Molecular Biotechnology Building - James LeVoy (SMBB)
DTSTART;TZID=America/Denver:20240412T114500
DTEND;TZID=America/Denver:20240412T131500
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Campus Locations: Sorenson Mol
ecular Biotechnology Building - James LeVoy (SMBB)
Room Name/Number:
2650
Contact Name: Taylor Wilkes
Contact Email: taylor.wilkes@uta
h.edu
Campus Wide Event: Yes
BIOENGINEERING ELEVATE
D TALK
CELEBRATING 50 YEARS OF BIOMEDICAL ENGINEERING AT THE UNIVERSI
TY OF UTAH
Modeling secondary hemophagocytic lymphohistiocyto
sis (HLH): An innate immune primary story
\;
Heather Gustafson\, PhD\, A
ssistant Professor of Pediatrics\, University of Washington\, and Seattl
e Children’\;s Hospital
In person in SMBB 2650!
strong>
Abstract: Our lab hypothesizes that a child’\;s spec
ific innate immune characteristics prior to cancer therapy can predict c
linical outcomes (efficacy and toxicity). It has often been thought that
disease characteristics are the primary driver of host immune response.
Our lab proposes that exposure to immune modulatory life events and res
ulting variations (infection\, microbiome\, vaccination\, gene mutations
\, etc.) establishes a child’\;s inflammatory baseline\, impacting
disease progression and response to therapy. Our work takes inspiration
from the pathophysiological overlap between toxicities resulting from im
munotherapeutics and hemophagocytic lymphohistiocytosis (HLH). HLH is of
ten triggered by autoimmune diseases\, malignancy\, or infection. It is
characterized by defective lymphocyte cytotoxicity\, with increased cyto
kine production\, coupled with uncontrolled myeloid activation. Importan
tly while this disorder is known to be induced by specific genetic mutat
ions associated with inflammation\, anyone can develop the disorder\, su
ggesting that life history can imprint susceptibility.
Secondary H
LH is known to drastically reduce 5-year survival in malignancies. This
is consistent with reduced overall survival in patients who developed se
condary HLH during immunotherapy (e.g. Chimeric Antigen Receptor or CAR-
T patients). It is known that T cells in HLH patients are continuously a
ctivated by antigen/tumor\, yet lack the capacity to fully clear the dis
ease. Thus\, we hypothesize that the HLH axis may drive post-CAR-T toxic
ity\, as well as poor overall therapeutic efficacy. Further\, this dicho
tomic axis may drive and be broadly applied to other cancer treatments w
here HLH can present as an undesirable toxicity and which license T cell
or NK cell behavior to resolve tumorigenesis (e.g. transplant\, bispeci
fic antibodies\, checkpoint blockade and chemotherapeutic regimes). We h
ypothesize that a basal level of cytokine secretion from myeloid populat
ions is necessary for overall therapeutic benefit\, but highly amplified
cytokine responses can induce toxicity or result in non-responsiveness
\, due to dramatic upregulation of negative feedback mechanisms downstrea
m of toxicity outcomes. Further\, we hypothesize that levels of cytokine
secretion can be predicted by the inflammatory status of a patient prio
r to therapy\, which could then be used clinically to help inform interv
entional strategies.
Bio: Heather Gustafson\, PhD is an Assistant
Professor in the Department of Pediatrics\, Division of Hematology/Oncol
ogy at the University of Washington\, and a Principal Investigator at Se
attle Children’\;s Research Institute. She received a BSE in Biomed
ical Engineering from Case Western Reserve University and a PhD in Bioen
gineering from the University of Utah. \; Her postdoctoral fellowshi
p was joint between the University of Washington and Walter and Eliza Ha
ll Medical Institute in Melbourne\, Australia. Dr. Gustafson joined the
faculty of SCH in the fall of 2019\, her research program focuses on tra
ining a child’\;s own immune system to eliminate cancer. We believe
the key to doing this is through first understanding where the crucial
dysregulation or untrained points are in that child’\;s innate immu
ne system\, then using that information to “\;re-train”\; the
innate immune system to clear cancer. More information can be found at <
a href="http://editlabs.org" target="_blank" rel="noopener">http://editl
abs.org
\;
\;
CATEGORIES:Biomedical Engineering
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BEGIN:VEVENT
SUMMARY:PhD Proposal Defense - Yunya Liu
DTSTART;TZID=America/Denver:20240415T150000
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A \;Doctor \;of \;
Philosophy \;Proposal \;Defense \;Entitled: \;
Quantu
m Computing for Solid Mechanics and Structural Engineering
\;
By: \;Yunya Liu
\;
Date: Monday 15 April 2024
Time: 3
:00 pm
Location: MEK 2660
\;
Zoom Meeting ID: \;459 69
2 1756
Passcode: \;795689
\;
Committee \;Members:&
#160\;
Dr. Pai Wang (Chair)
Dr. Shandian Zhe
Dr. Jacob Dean Hoc
hhalter
Dr. Ashley Spear
Dr. Henry Fu
\;
Project \;
Summary \;
This research explores the potential of specialized al
gorithms suitable for Noisy Intermediate-Scale Quantum (NISQ) computers
in addressing complex problems in solid mechanics and civil engineering.
It focuses on three main objectives: Firstly\, demonstrating the effica
cy of quantum computing in numerical analyses of solid mechanics\, parti
cularly for identifying fundamental natural frequencies using the Variat
ional Quantum Eigensolver (VQE). Secondly\, enhancing the numerical effi
ciency and accuracy of calculating dispersion bands in elastic metamater
ials through adaptive Variational Quantum Algorithms (VQAs). And thirdly
\, applying extended VQA approaches to predict nonlinear dynamics of str
uctured materials. This research is pivotal in advancing quantum computi
ng'\;s role in solid mechanics and metamaterial physics\, potentially
pushing the frontier of material science and engineering. The synergy o
f quantum algorithms with traditional optimization methods is anticipate
d to facilitate the transition into the quantum computing era\, providin
g novel perspectives and methodologies for addressing longstanding quest
ions in these scientific fields.
\;
Everyone \;is \;W
elcome \;to \;Attend
CATEGORIES:Mechanical Engineering
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BEGIN:VEVENT
SUMMARY:2024 Technical Open House
LOCATION:Warnock Engineering Building - John and Marva (WEB)
DTSTART;TZID=America/Denver:20240417T130000
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CATEGORIES:Electrical & Computer Engineering
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BEGIN:VEVENT
SUMMARY:ECE April Social Hour
LOCATION:Merrill Engineering Building - Joseph F. (MEB)
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Campus Wide E
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CATEGORIES:Electrical & Computer Engineering
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BEGIN:VEVENT
SUMMARY:Spring 2024 Full-Term Last Day to Reverse CR/NC Option
DTSTART;VALUE=DATE:20240419
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SUMMARY:Spring 2024 Second Half Last Day to Reverse CR/NC Option
DTSTART;VALUE=DATE:20240419
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CATEGORIES:Academic Deadlines
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SUMMARY:Executive Committee Meeting
LOCATION:Warnock Engineering Building - John and Marva (WEB)
DTSTART;TZID=America/Denver:20240419T130000
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Executive Committee Meeting
For Dept. Chairs Only
CATEGORIES:College of Engineering
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DTSTART;VALUE=DATE:20240423
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DTSTART;VALUE=DATE:20240423
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SUMMARY:Spring 2024 Full-Term Reading Day
DTSTART;VALUE=DATE:20240424
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BEGIN:VEVENT
SUMMARY:BME Faculty Meeting
LOCATION:Sorenson Molecular Biotechnology Building - James LeVoy (SMBB)
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Room Name/Number: 3250
Contact Name: Taylor
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Contact Email: taylor.wilkes@utah.edu
Campus Wide Event: Ye
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CATEGORIES:Biomedical Engineering
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BEGIN:VEVENT
SUMMARY:Annual ARCS Scholar Award Luncheon
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MORE DETAILS TBA
CATEGORIES:College of Engineering
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BEGIN:VEVENT
SUMMARY:Spring 2024 University Commencement and College Convocation Exer
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DTSTART;VALUE=DATE:20240502
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