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N. Khazai and O. Hamdy
rate is not causing hypoglycemia. If there is any concern
about possible fasting hypoglycemia, a temporary basal rate
should be set at 80% of the patient’s usual basal rate. The
infusion set should be changed 24h before surgery, and the
insertion site should be selected away from the surgical site.
The chosen site can be anywhere on the upper outer thighs,
upper arms, or abdomen 2 inches away from the umbilicus.
Blood glucose should be checked every hour during surgery.
Transition to insulin infusion should be considered if blood
glucose exceeds and remains above 180mg/dL.
Critical Illness
Patients on insulin pumps need to be transitioned to an intravenous insulin infusion in critical illness [48].
Perioperative Diabetes Management
Patients with diabetes should be given preference for earlymorning surgery. Doing so may decrease the risk of hyperglycemia and hypoglycemia resulting from disruption in
typical medication and food schedules. On the day prior to
surgery, patients with diabetes should continue their usual
hospital-ordered calorie-restricted, carbohydrate-consistent
diabetic diet, along with their ordered insulin and/or oral
antihyperglycemic medications. Changes that need to be
made to the patient’s diabetes medication regimen are listed
in Table6.7. The patient’s health care team needs to ensure
that the patient is not sent to the preanesthesia unit without
receiving their adjusted scheduled dose of long-acting or
intermediate-acting insulin. This is especially important in
patients with type 1 diabetes who are traditionally at a higher
risk of diabetic ketoacidosis if their insulin regimen is
disrupted.
Intraoperative
Upon arrival to the preanesthesia unit, diabetes management
is largely dependent on the patient’s type of diabetes, blood
glucose upon arrival, and the type of surgery. The target
blood glucose range in the perioperative period is 80–180mg/
dL [11]. Tighter perioperative glycemic control does not
improve outcomes and has been associated with hypoglycemia [51].
Minor Surgeries
The patient’s blood glucose upon arrival to the preanesthesia
unit can determine treatment and BG monitoring frequency,
as outlined in Table6.3. Patients who have a blood glucose
level>180mg/dL and are not responding to subcutaneous
insulin within an hour can be started on IV insulin infusion.
On the other hand, patients with blood glucose lower than
100mg/dL should be started on IV dextrose infusion, as outlined in Table6.8. All other patients should receive maintenance intravenous uids that do not contain dextrose, such as
lactated ringers, normal saline, or ½ normal saline.
Major Surgeries
It is recommended that IV insulin infusion be started for
patients undergoing chest, abdominal, vascular bypass,
transplant, spinal or brain surgery, total hip or knee replacement surgeries, or surgery anticipated to last longer than 4h.
For patients who are started on IV insulin infusion, a dex-
Table 6.7 Preoperative diabetes management night before or the
morning of surgery
Diabetes medication management
• Long-acting (glargine or detemir) insulin: Inject 80% of the
scheduled dose at bedtime or in the morning before surgery,
depending on the patient’s usual administration time
• Intermediate-acting (NPH) insulin: Inject ½ of the usual dose
• Rapid (aspart, lispro, glulisine) or short-acting (regular)
insulin: Omit morning dose (including inhaled insulin)
• Premixed insulin (70/30, 75/25, 50/50): Inject ½ of the NPH
component of the usual premixed insulin and no rapid or
short-acting insulin on the morning of surgery
• Oral and noninsulin injectable diabetes medications:
Discontinue on the morning of surgery [9]
Blood glucose monitoring
• Check blood glucose at bedtime and on the morning of surgery
and every 4–6h thereafter
• If hypoglycemic at bedtime or overnight, the patient should be
treated with glucose gel and not by juice
Table 6.8 Intraoperative diabetes management for nonmajor surgery
BG<80mg/dL
Give at least 100mL D10W IV or
25–50mL (1/2–1amp) of D50
Check BG in 15–30min
BG 80–100mg/dL
↓
Begin D5W at 40mL/h or D10W
↓
at 20mL/h
Check BG in 1h
BG 101–180mg/dL
↓
Continue to monitor
Check BG every 2h
BG >180mg/dL
↓
Give corrective rapid-acting insulin
q4h (Table6.3) or start insulin
infusion; check BG every hour

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101
trose containing intravenous uid is necessary. D5W at
40mL/h or D10W at 20 mL/h should be started to provide
approximately 50mg of glucose over 24h.
Postoperative
While the patient is in the postanesthesia unit, the management and frequency of BG monitoring remain similar to that
during surgery (Table6.8). If the patient’s BG is greater than
180mg/dL, BG should be checked hourly. A corrective dose
of rapid-acting insulin should be administered every 4 h.
Upon arrival to the regular oor, it is recommended to start a
basal plus nutritional or basal plus corrective rapid-acting
insulin regimen [52, 53]. If the patient is not eating, nutritional insulin should be held. It may be started later at
reduced doses based on oral nutrition intake [9, 53]. Patients
whose status is postcardiac surgery should continue on IV
insulin infusion.
Hyperglycemia Management oftheCritically
ill Inpatient
It is well established that mortality, morbidity, and length of
stay increase when blood glucose levels rise above 180–
200mg/dL in critically ill patients [5, 9]. More recently, it
has been established that hypoglycemia in these patients is
also associated with increased mortality. It is therefore
important to have a form of insulin that both acts and clears
rapidly in order to quickly correct and prevent hyperglycemia and hypoglycemia. When regular insulin is injected by
intravenous (IV) versus subcutaneous (SC) routes, peak
serum levels are reached within 2min by the IV route versus
60min by the SC route, resulting in peak glucose lowering at
15 min by the IV route versus 180 min by the SC route.
Rapid glucose lowering by IV insulin is coupled with rapid
insulin clearance and allows blood glucose levels to return to
baseline 30min postinjection if insulin infusion is stopped
[54–56]. The slower performance of SC-administered regular insulin is because regular insulin is crystalized around a
zinc molecule in the shape of a hexamer. It takes time for this
hexamer to dissociate rst into dimers and then monomers,
which rapidly cross the capillary membrane and bind to insulin receptors. Thus, IV insulin infusions are the standard of
care in critically ill patients. Exceptions are patients who are
predicted to be discharged from the ICU in less than 24h.
Those patients may start or continue SC insulin as previously
discussed.
Table 6.9 Glucose targets in critically ill patients with and without
diabetes
Established diabetes No diabetes
• Status postcardiac surgery or
• Status postischemic cardiac or
neurological event
140–180mg/dL 100–150mg/dL
Target Blood Glucose Range
The current blood glucose recommendations for critically ill
patients by the American Diabetes Association (ADA) in
conjunction with the American Association of Clinical
Endocrinologists (AACE) [9] and separately by the Society
of Critical Care Medicine [57] are listed in Table 6.9. In
order to understand the rationale behind these recommendations, we will briey review the landmark randomized controlled trials leading to them. The Leuven trial in 2001 [58]
was a single-center trial that compared a BG target of
80–110mg/dL versus 180–200mg/dL in the surgical ICU.It
showed a 42% reduction in mortality and 34% reduction in
the length of stay. The Leuven group repeated its study in
medical ICUs but was not able to show a similar reduction in
mortality. In fact, there was a trend toward increased mortality that was found to be strongly associated with hypoglycemia. [59] The VISEP study [60] compared the two target BG
range groups dened by the Leuven trials but in patients with
septic shock [58, 59]. The study reported a signicant
increase in adverse events (11 vs. 5%) in the 80–110mg/dL
group versus the 180–200mg/dL group, and the study was
stopped early due to a signicantly increased rate of hypoglycemia (17 vs. 4%) in the tightly controlled group. The
NICE-SUGAR study [61], a large multinational study, compared a target range of 81–108mg/dL to 140–180mg/dL in
both surgical and medical ICUs. The trial showed a signicant increase in 90-day mortality with the lower target, which
was associated with hypoglycemia, although no causal relationship was established [62]. Of note, this was the only
study that had a comparison group with blood glucose levels
below 180 mg/dL, which is well below the 200 mg/dL
threshold that prior studies had shown to increase morbidity
and mortality. It is worth noting that the safety of blood glucose levels between 110mg/dL and 140mg/dL is still unanswered. The ADA/AACE recommendations [9] aim to keep
the lower end of their target higher enough (140mg/dL) to
preemptively prevent less experienced ICU teams from
entering their patients into the blood glucose “danger zone”
of <110mg/dL, which was associated with higher mortality,
as shown in the NICE-SUGAR study [61], and an upper end
of the range<180mg/dL to avoid falling into the >200mg/

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dL “danger zone.” It is recommended that blood glucose
should be kept in the lower end of this range [9]. However,
certain hospitals with lower hypoglycemia rates have chosen
tighter target ranges, such as 120–160mg/dL, presuming the
unexamined 110–140mg/dL to be safe and trying to keep
their upper target range away from 200mg/dL.
For patients whose status is postcardiac surgery, the Society
of Critical Care Medicine recommends a target range of 100–
150mg/dL [57] (see Table6.9). However, tight control (100–
140 mg/dL) on IV insulin infusion in postcardiac surgery
patients has been shown to lower adverse outcomes for
patients without diabetes. Patients with diabetes have no
increased complications in the 140–180mg/dL target group
when compared to the 100–140mg/dL target group [63, 64].
Other patients without diabetes who may benet from tighter
glycemic control are those who are admitted for an acute ischemic cardiac [65] or neurological event, provided these targets
can be achieved without signicant hypoglycemia. [57]
Effective insulin infusion protocols must use dynamic as
opposed to static algorithms that use the last blood glucose,
the rate of change in blood glucose, as well as the current
insulin infusion rate when recommending the new insulin
infusion rate [11]. This will help prevent hyperglycemia if
the rate of correction is too slow and hypoglycemia if the rate
of correction is too fast. Many different paper-based and
computer-based dynamic algorithms are available, and no
single protocol or algorithm has been established as the most
effective for achieving and maintaining glucose targets or
achieving the lowest hypoglycemia rates [66, 67]. It is
important that the hospital’s chosen protocol is validated and
that the hospital has demonstrated safety and efcacy [67].
The key elements of an intravenous insulin infusion protocol
are listed in Box 6.3 [66–68]. In general, a potential hypoglycemic or hyperglycemic scenario should be anticipated
and proactively addressed with clear guidelines in the protocol. For example, in the event of abrupt TPN/PPN, steroid, or
vasopressor discontinuation, the infusion rate should be
reduced by 50%, with the resumption of blood glucose
checks once every hour until blood glucose levels are stable.
It needs to be noted that patients with diabetic ketoacidosis
and hyperglycemic hyperosmolar syndrome will need modied insulin infusion protocols that prevent a rapid correction
of hyperglycemia.
N. Khazai and O. Hamdy
Box 6.3: Key Elements of an Intravenous Insulin Infusion
Protocol
1. Clear instructions on the criteria for the initiation of
IV insulin infusion.
2. Clearly the stated target blood glucose.
3. Clear instructions on how to calculate the initial IV
insulin infusion rate.
4. Instructions on the frequency of blood glucose
monitoring.
5. Clear instructions on the management of
hypoglycemia.
6. Guidance for handling situations where TPN, PPN,
steroids, or vasopressors are added or removed.
7. Guidance for transitioning from IV insulin to SC
insulin.
8. Instructions on how to change insulin infusion rate.
Transitioning o Insulin Drip
Once critically ill patients become clinically stable and ready
for transfer out of the ICU and are tolerating at least 50% of
their diet or are on a stable regimen of TPN or PPN, they are
ready to come off the insulin infusion. Not all patients who
were on an insulin infusion in the critical care unit will need
to transition to SC insulin. Patients who need to be transitioned are those with type 1 diabetes, with type 2 diabetes, or
without diabetes requiring more than 1–2units/h of insulin.
[69] The Joslin Diabetes Center guidelines for transitioning
patients from intravenous (IV) to subcutaneous (SC) insulin
are listed in Box 6.4 [69, 70].
Box 6.4: Guidance for Transitioning from IV to SC Insulin
1. Determine the average hourly rate of insulin over
the past 8h.
2. Multiply this number by 24 to determine total IV
insulin requirements in the past 24h (TDD-IV).
3. Use 60–80% [71, 72] of the total TDD-IV to derive
your TDD of SC insulin (TDD-SC).
4. If the patient was on NPO, the TDD-SC number is
equivalent to the patient’s basal insulin.
5. If the patient was eating over the past 24h, then ½
of the TDD-SC is bolus and the other half basal.
6. Overlap IV insulin infusion for a minimum of 4h if
subcutaneous insulin glargine is given without subcutaneous fast-acting insulin.

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Hypoglycemia
The early recognition and treatment of hypoglycemia, utilizing a hospital-wide nurse-led protocol, signicantly reduces
adverse outcomes [73, 74]. Treatment depends on the severity of the hypoglycemic episode and whether or not the
patient is conscious. The hypoglycemia management guidelines by Joslin Diabetes Center are listed in Table6.10 [75].
The recurrence of hypoglycemia is common. In one study,
84% of patients with severe hypoglycemia had one prior episode of hypoglycemia. [11] Failing to adjust insulin regimen
after a hypoglycemic event is common [11] and is a strong
predictor of the recurrence of hypoglycemia and declining
renal function [9]. Therefore, it is important for treating providers to review the patient’s insulin regimen and adjust
basal or corrective bedtime insulin doses in the event of fasting hypoglycemia or bolus and/or corrective insulin doses in
the event of postprandial hypoglycemia. [5] The Joslin
Diabetes Center guidelines on insulin adjustments for hypoglycemia are detailed in Box 6.5 [75]. In about 20% of cases,
rebound hyperglycemia is experienced after a hypoglycemic
event. Close communication between physicians and nursing staff prior to making any changes to the patient’s insulin
regimen is quite important. Overcorrection with carbohy-
drates is frequently the main cause of rebound hyperglycemia. For example, giving no more than 20g of carbohydrate
for the correction of blood glucose between 50 and 70mg/dL
and calculating the D50 dose based on blood glucose readings at the time of the hypoglycemic episode instead of
injecting a full ampule are good practices. Examples and
serving sizes of simple carbohydrates used to treat hypoglycemia are listed in Box 6.5. It needs to be noted that patients
with gastroparesis should receive treatment with glucose gel
due to their delayed gastrointestinal absorption. Blood glucose should be checked 15min later, and if blood glucose
remains <70mg/dL, another 15g of simple carbohydrates
should be given. As discussed in the previous section, for
critically ill patients, the consensus threshold for hypoglycemia is considered 100mg/dL.
Box 6.5: Examples of 15g of Carbohydrate
• 4 glucose tablets
• 1 tube glucose gel
• 4oz. (1/2 cup of juice or regular soda)
• 4 teaspoons of sugar.
Table 6.10 Hypoglycemia management (noncritically ill patients)
Treatment
Conscious on oral feeding BG: 50–69mg/dL 15–20g of simple carbs
BG<50mg/dL 20–30g of simple carbs
Conscious but NPO On IV insulin • Stop insulin infusion
• Inject bolus dose D50W IV.Dose in mL=(100– BG)×0.4
• Start D10W IV at 25cc/h
• Once BG is back to >100mg/dL, stop D10W and resume insulin infusion at
50% of the previous rate
On SC insulin • Inject bolus dose D50W.Dose in mL=(100—BG)×0.4
• Start D10W IV at 25cc/h
• Once BG is back to >100mg/dL, stop D10W and resume the insulin regimen
after appropriate adjustments are made
Unconscious No IV access • Give 1mg glucagon IM or 0.5mg for patients <50kg body weight
• Once IV access is established, proceed with the steps outlined for the conscious
patient
Insulin adjustment
Fasting hypoglycemia • Reduce long-acting basal insulin by 20% if BG is 50–70mg/dL
• Reduce long-acting basal insulin by 30% if BG is <50mg/dL
• If the patient received corrective insulin prior to the event, consider increasing the sensitivity factor
(SF) of corrective insulin
Postprandial Hypoglycemia • Reduce bolus (nutritional) insulin by 20–50% for the duration that the patient’s oral food intake is
below baseline
• If the patient received corrective insulin prior to the event, consider increasing the sensitivity factor
(SF) of corrective insulin

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N. Khazai and O. Hamdy
Summary
During hospital admission, proactive glycemic control for
critically ill and noncritically ill patients with diabetes is
important to prevent hospital complications and mortality,
whether patients are managed in surgical or medical units.
Hyperglycemia needs to be avoided with the institution of
long-acting basal plus nutritional and corrective rapid-acting
bolus insulin and not only by corrective regular insulin doses
before the sliding scale. The timely detection of hypoglycemia and nurse-led management protocols have become a
standard of care. Timely changes in treatment are greatly
facilitated by glucose meters that are wirelessly connected to
the hospital’s electronic health record system, as well as by
using computerized physician insulin order entry systems.
This combination allows physicians to rapidly access
patient’s blood glucose readings from anywhere in the hospital and immediately intervene. Good communication
between the hospital teams and the availability of certied
diabetes educators are shown to improve diabetes control
during hospital admission and ensure patient safety after discharge. As tight glycemic control may be associated with an
increased hypoglycemia risk, further studies are still needed
to determine the ideal blood glucose targets for both critically ill and noncritically ill patients. With increasing attention to medication errors and iatrogenic complications in the
hospital setting, safely achieving euglycemia will be of paramount importance.
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Part II
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Pathophysiology

Physiology andPathophysiology
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ofWound Healing inDiabetes
IrenaPastar, NathanC.Baluko, AndrewP.Sawaya,
NicoleM.Vecin andMarjanaTomic-Canic
7
Abstract
Wound healing is a dynamic process comprising of overlapping phases of hemostasis, inammation, proliferation, and remodeling that involve multiple cell types. This
highly organized and coordinated series of processes
result in the restoration of tissue and barrier integrity.
Deregulation in any of these processes leads to a delayed
or a nonhealing phenotype as seen in diabetic foot ulcers
(DFUs). The functions and cell-to-cell communication
between different cell types contributing to wound healing (keratinocytes, broblasts, endothelial cells, neutrophils, and macrophages) and their deregulation in chronic
nonhealing ulcers are discussed here in detail. The balance of signaling factors, including growth factors cytokines and chemokines, and gene expression regulators,
along with their spatiotemporal control, is indispensable
for successful wound healing, while their dysregulation
contributes to pathophysiology of DFUs. Additional factors that contribute to the delayed healing seen in diabetes
include deregulated immune response, macro- and microvascular complications, neuropathy, and microbial dysbiosis. Discussion of therapeutics including cell therapy,
stem cells, and stem cell-derived extracellular vesicles
provide approaches for potentially effective treatments of
patients with DFUs is also included.
Physiology ofWound Healing
Wound healing is an evolutionarily conserved process that
aims to restore the damaged epithelial barrier between the
body and the outside world. This complex process involves
I. Pastar · N. C. Balukoff · A. P. Sawaya · N. M. Vecin ·
M. Tomic-Canic (*)
Wound Healing and Regenerative Medicine Research Program,
Department of Dermatology and Cutaneous Surgery, University of
Miami Miller School of Medicine, Miami, FL, USA
e-mail: mtcanic@med.miami.edu
many cellular responses including inammation, proliferation, migration, angiogenesis and tissue remodeling.
Immediately after the injury, blood components are released
into the wound site, activating the clotting cascade. The
resulting clot induces hemostasis, releases chemotactic cytokines, and provides a matrix for the inux of inammatory
cells. Inammation is characterized by leukocyte migration
and arrival to the site of injury. Neutrophils arrive rst to
remove contaminating bacteria and release pro- inammatory
cytokines [1]. They are followed by monocytes, which differentiate into macrophages at the site of tissue injury.
Macrophages play an important role in augmenting the
inammatory response and removing nonviable tissue. At
the same time, many different cell types respond to initial
inammatory signals and migrate to the wound site, including keratinocytes, endothelial cells, and both circulating and
local progenitor cells. Once they arrive and proliferate, the
processes of reepithelialization, neovascularization, and
granulation tissue formation commence. Granulation tissue
formation begins during the inammatory phase, forming a
“beefy red” and highly vascular region of the healing tissue,
predominantly relying on neovascularization [1, 2]. As the
wound closes, the immature brin matrix and granulation
tissue are replaced by collagen and scar.
Wound healing as a process does not end at wound closure, although this is the visible sign of complete healing.
After closure, the remodeling phase begins, which is characterized by continuing collagen deposition and cross-linking.
During remodeling, balance is established between collagen
synthesis and degradation, which gives the scar its tensile
strength [1, 3]. Wound healing in adults results in scar formation, brosis, and contracture. However, fetal skin, up to
midway through the third trimester, heals without scar formation, using a unique regenerative pathway [4].
Cellular responses to injury involve direct cell-cell and
cell-matrix interactions, as well as indirect crosstalk between
different cell populations via soluble mediators. Thus, wound
healing is orchestrated through the integration of multiple
signals (growth factors, cytokines, and chemokines) released
© The Author(s), under exclusive license to Springer Nature Switzerland AG 2024
A. Veves et al. (eds.), The Diabetic Foot, Contemporary Diabetes, https://doi.org/10.1007/978-3-031-55715-6_7
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I. Pastar et al.
by participating cells including keratinocytes, broblasts,
endothelial cells, neutrophils, macrophages, and platelets.
The appropriate balance of these signaling factors as well as
their spatiotemporal control is essential for successful wound
healing [5–9]. The functions of various contributing cells,
i.e., keratinocytes, broblasts, endothelial cells, neutrophils,
and macrophages, are discussed in more detail below.
Cellular Components ofWound Healing
Keratinocytes
Keratinocytes play several critical roles in the wound healing
process and are among the most important cells that respond
to injury and accelerate healing. Under normal conditions,
their main role is to form the barrier of the skin. Once the
skin is wounded, keratinocytes play many important roles,
including the release of cytokines and growth factors, which
recruit other cell types, stimulate matrix formation, and promote angiogenesis [10, 11]. Simultaneously, keratinocytes
also migrate and proliferate within the wound bed to accelerate closure and restore the skin barrier [9].
In healthy skin, keratinocytes proliferate in the basal cell
layer and differentiate in the suprabasal layers. Basal keratinocytes are mitotically active and help form the basement
membrane by promoting crosstalk with dermal broblasts,
melanocytes, and Langerhans cells. Once keratinocytes
migrate above the basal cell layer, they change phenotypically and begin to differentiate. During this process, keratinocytes stop dividing, change their keratin production from
K5/K14 to K1/K10, and begin producing a number of other
insoluble proteins [12]. Terminal differentiation results in the
loss of nuclei and protein cross-linking, giving rise to a cornied layer that forms the epidermal barrier [9, 13, 14]. The
perpetual process of keratinocyte differentiation and upward
migration maintains a strong barrier to the outside world.
Because keratinocytes are responsible for barrier maintenance, they are equipped for rapid response to injury. When
the epidermal barrier is disrupted, keratinocytes release prestored interleukin-1 (IL-1), which is the rst signal that alerts
nearby cells to barrier damage [10, 15]. In addition to the
common initiator, IL-1, certain cytokines, and growth factors
such as tumor necrosis factor alpha (TNF-α) and epidermal
growth factor (EGF) are released by keratinocytes that
together with IL-1 act in both an auto- and paracrine manner
[9, 16–19]. This process, termed the “keratinocyte activation
cycle,” is characterized by changes in cellular behavior
(migration, proliferation), induced secretion of multitude of
other growth factors and cytokines, and expression of K6,
K16, and K17 keratin proteins, which are often considered as
the rst markers of epidermal healing [20, 21].
To close a breach in the epidermal barrier, keratinocytes
at the wound edge rst loosen their adhesion to each other
and the basal lamina. Additionally, keratinocytes display
remarkable exibility, which allows migration over the
extracellular matrix (ECM) deposited by activated dermal
broblasts. This process is facilitated by rearrangement of
integrin receptors and reassembly of the associated actin
cytoskeleton and keratin lament network [14]. Growth factors and cytokines such as EGF, keratinocyte growth factor
(KGF), transforming growth factor alpha (TGF-α), broblast
growth factor (FGF), interleukin-1 (IL-1), and interleukin-6
(IL-6) have been shown to be crucial regulators of keratinocyte proliferation, migration, and reepithelialization as well
as communication with other cell types [7, 10, 15].
First, the migrating epithelial tongue advances to cover
the wound with a thin layer. Then, keratinocytes proliferate
to ensure an adequate supply of cells to encase the wound.
Once the wound is healed, dened as being fully epithelialized with no drainage and covered by a keratinocyte monolayer, the proliferation signals cease, and the stratication
process begins again. Thus, keratinocytes become “deactivated” and revert to their previous normal differentiation
pattern.
Fibroblasts
Complex interactions and crosstalk between broblasts,
keratinocytes, and other cell types participating in wound
healing are crucial for successful wound closure. Under normal conditions, broblasts synthesize collagen and ECM,
maintaining the structural integrity of the skin. Fibroblasts
play a vital role in wound healing as they migrate, proliferate, and supply ECM for tissue repair. Another of the many
important roles of broblasts is to provide contractile properties to the wound as myobroblasts. Much like keratinocytes,
broblasts’ various roles are tightly regulated by cytokine
and growth factor signaling during the process of wound
healing.
Fibroblasts as a whole exhibit signicant functional diversity and reside in most tissues of the body. There are multiple
lineages of broblasts with varying functions based on their
site of origin and embryonic expression of certain genes
[22]. Dermal broblasts of the skin arise from at least two
distinct lineages that are regulated by epidermal β-catenin
activation [23]. The rst reside in the upper dermis where
they play a role in hair growth and are required for follicle
formation. These broblasts are stimulated by epidermal Shh
(sonic hedgehog) signaling [23, 24]. The second lineage
resides in the lower dermis, and their main function is producing the structural ECM including collagen bers. It is
responsible for the bulk of dermal repair and are regulated by
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