Tick Season Is Peaking: What NPs
Need to Know About Lyme, Alpha-Gal, Babesiosis, and Powassan Virus
ED
visits for tick bites are at their highest rate since 2017. Here's how to
recognize, diagnose, and counsel patients on the diseases behind them.
Source:
Stern O. Summer marks peak
season for tick-borne diseases: how to educate patients. Published August 10,
2026, citing CDC data and Rodino KG, Theel ES, Pritt BS, J Clin Microbiol.
2025.
Mosquitoes
usually get top billing in summer patient-education conversations, but ticks
deserve equal attention this year. Emergency department visits for tick bites
are at their highest rate since 2017, and the CDC estimates roughly 31 million
tick bites occur annually across the US. Tick-borne disease cases overall have
more than doubled since 2004 — and that figure is likely an undercount, since
many of these illnesses present with vague, overlapping symptoms and patients
often don't recall being bitten.
The black-legged (deer) tick now
inhabits roughly 45% of continental US counties, a substantial range expansion
since the early 1900s, according to Bobbi S. Pritt, MD, chair of the division
of clinical microbiology at Mayo Clinic. Warming climates, expanding deer and
rodent populations, and increased land use are all expected to keep pushing
tick ranges — and the diseases they carry — into new territory. Peak season
runs April through October, which makes now the right time to sharpen
recognition of the major tick-borne illnesses.
Disease Overview
|
Disease |
Primary Vector |
Region of Concentration |
Hallmark Feature |
|
Lyme disease |
Ixodes (black-legged/deer
tick) |
Northeast/Mid-Atlantic, WI,
MN, MI (~96% of cases) |
Erythema migrans rash in ~70%
of cases; 3-stage progression |
|
Alpha-gal syndrome |
Lone-star tick |
South, East, Central US |
Delayed allergic reaction to
red meat/mammalian products |
|
Babesiosis |
Ixodes (black-legged/deer
tick) |
Overlaps with Lyme-endemic
areas |
Can also spread via
transfusion, transplant, or perinatally; frequent Lyme co-infection |
|
Powassan virus |
Ixodes (black-legged/deer
tick) |
Northeast, Upper Midwest |
Only tick-borne encephalitis
in the US; can transmit in as little as 15 minutes |
Lyme Disease
Lyme
remains the most common tick-borne illness in the US. Reported cases (34,945 in
2019) likely understate true incidence by 8- to 12-fold. Disease typically
unfolds in three stages: an early localized stage marked by erythema migrans
(present in roughly 70% of cases, expanding in about 75% of those, not always
in a classic bullseye pattern); early disseminated infection days to weeks
later, which can bring secondary rashes, neurologic symptoms (~10%), or Lyme
carditis (~4%); and late/persistent infection, averaging 6 months after rash
onset, with recurrent arthritis — usually in the knee — in roughly 60% of
patients. About 10% of patients go on to develop post-treatment Lyme disease
syndrome (fatigue, myalgia, cognitive impairment).
Treatment is a course of
doxycycline, amoxicillin, or cefuroxime axetil, ideally started within 72 hours
of removing a high-risk tick. “High-risk” means an identified Ixodes species,
attachment of more than 36 hours, and a bite in a highly endemic area; bites
that don't meet all three criteria warrant watchful waiting rather than empiric
treatment.
Alpha-Gal Syndrome
Lone-star tick bites can
transmit the alpha-gal molecule into the bloodstream, triggering a potentially
life-threatening delayed allergy to red meat and other mammalian products. The
CDC estimates nearly 450,000 people may be affected, with more than 110,000
cases identified over the past 25 years; the first reported death linked to
alpha-gal syndrome occurred in New Jersey last year. Range expansion is
expected to continue northward and westward with ongoing climate change. Adult
female lone-star ticks are identifiable by a distinctive white dot on the back;
South, East, and Central states currently carry the highest exposure risk.
Babesiosis
Babesiosis is notable for its
non-tick transmission routes — blood transfusion, organ transplant, and
perinatal transmission are all possible in addition to tick bites. It's the
third most common Ixodes-transmitted disease (2,418 cases reported in 2019).
Presentation ranges from asymptomatic (about half of children, one-quarter of
adults) to severe, with fever, malaise, joint pain, GI symptoms, hemolytic
anemia, thrombocytopenia, or organ dysfunction in serious cases. Hospitalized
patients face 6–9% fatality, rising to 21% among immunosuppressed patients.
Concurrent Lyme disease occurs in an estimated 6–23% of babesiosis cases and
increases severity — worth screening for when either diagnosis is suspected.
First-line treatment is azithromycin plus atovaquone, with clindamycin plus
quinine as an alternative; immunocompromised or asplenic patients may need
higher, prolonged dosing.
Powassan Virus
Rarer than the other three, but
rising: cases stayed under 20 annually from 2004 to 2015, then climbed to 60
cases (9 deaths) and 76 cases (10 deaths) in the two most recent years
reported, with 29 cases already logged across 9 states this year — 27 of them
neuroinvasive. Powassan is the only tick-borne encephalitis found in the US,
with a fatality rate near 10% and lasting neurologic effects in roughly half of
survivors. Transmission can begin in as little as 15 minutes of attachment,
with infection onset possible within 6 hours — far faster than the 24–48-hour
window typical of most other tick-borne diseases. Diagnosis requires a
two-pronged approach: molecular testing 5–7 days after symptom onset, plus
serology after the first week.
Diagnostic Considerations
Serology remains the default for
most tick-borne diseases, but it has real limitations for anaplasmosis,
ehrlichiosis, and babesiosis specifically: seroconversion can take 7–14 days,
some patients never mount a detectable IgG response, antibodies can persist for
months to years after resolved infection, and specificity issues can produce
false positives or negatives. For those three diseases, nucleic acid
amplification tests (NAATs) are preferred over serology despite the lack of an
FDA-approved NAAT specific to this use — the tests are limited by a short
viremic window but still outperform antibody testing in this context. Broader
metagenomic testing is also emerging as an option when the clinical picture is
nonspecific enough that casting a wide net for any bacterium, virus, or
parasite is warranted.
|
■ CLINICAL BOTTOM LINE •
Reserve
single-dose/short-course prophylactic doxycycline for confirmed high-risk
exposures: Ixodes species, ≥ 36 hours attachment, highly endemic area,
treated within 72 hours of removal. •
Don't rule out Lyme disease
just because a rash is absent — roughly 30% of patients never develop
erythema migrans. •
Ask about new-onset red meat
reactions (hours after eating, not immediate) in patients from lone-star tick
territory — alpha-gal syndrome is easy to miss without a specific index of
suspicion. •
When babesiosis is confirmed,
screen for concurrent Lyme disease, and vice versa — co-infection is common
and changes the clinical picture. •
For anaplasmosis,
ehrlichiosis, and babesiosis, favor NAAT testing over serology when
available, given serology's seroconversion lag and specificity limits. •
Counsel on same-day tick
checks, prompt mechanical removal with forceps, and EPA-registered repellents
(DEET, picaridin, permethrin) as the highest-yield prevention strategies. |
|
■ CASE FROM PRACTICE A
42-year-old returns from a camping trip in western Wisconsin 10 days ago with
fatigue, joint aches, and a low-grade fever. He doesn't recall a tick bite or
rash and initially attributes his symptoms to a summer cold. On exam, there's
no visible erythema migrans, but he mentions his knee has felt “achy and
swollen” for the past two days. This presentation is a
reminder that absence of a rash doesn't rule out Lyme disease, and that joint
symptoms can be an early clue even before the classic late-stage arthritis
picture develops. Given the endemic location and symptom cluster, this
warrants Lyme serology, consideration of co-testing for babesiosis given
regional overlap, and a treatment conversation rather than waiting for a more
“textbook” presentation to appear. |
|
■ A NUANCE WORTH FLAGGING Rising case counts don't
always mean rising true incidence. Powassan virus cases are climbing partly
because of genuinely expanding tick ranges, but also because of limited
diagnostic testing and low clinician awareness historically — better
detection can look like an outbreak even when some of the increase reflects
better ascertainment. The same caution applies to alpha-gal syndrome: a
single reported death establishing causality doesn't quantify overall
mortality risk, and the ~450,000-person prevalence estimate is exactly that,
an estimate, built from a condition that is likely substantially
underdiagnosed given its atypical delayed-allergy presentation. Treat these
figures as directionally meaningful rather than precise. |
📚 Board Prep: What to
Know
Tick-borne
disease questions often hinge on precise criteria and stage-based
presentations. Key points to have cold:
•
Prophylactic doxycycline
criteria: Ixodes species tick, ≥ 36 hours attachment, high-endemic area, given
within 72 hours of removal — all four must be met.
•
Lyme diseases' three stages:
early localized (erythema migrans), early disseminated (secondary rashes, neuro
symptoms, carditis), and late/persistent (recurrent arthritis, usually knee).
•
Babesiosis transmission is not
limited to tick bites — also via transfusion, transplant, and perinatal routes;
know this as a distractor against “tick-only” transmission questions.
•
Powassan virus is the only
tick-borne encephalitis native to the US, with transmission possible in as
little as 15 minutes of attachment.
•
NAAT over serology for
anaplasmosis, ehrlichiosis, and babesiosis, due to seroconversion delay and
specificity limitations of antibody testing.
•
Alpha-gal syndrome is a delayed
(not immediate) IgE-mediated allergic reaction to mammalian meat, transmitted
via lone-star tick saliva — distinct mechanism from the Ixodes-transmitted
diseases.
References
Centers
for Disease Control and Prevention. CDC data show weekly ER visits for tick
bites higher than usual. Published April 23, 2026.
Rodino
KG, Theel ES, Pritt BS. Update on North American tick-borne diseases and how to
diagnose them. J Clin Microbiol. 2025;63(8):e00807-23.
Eilbert
W, Matella A. Tick-borne diseases. Emerg Med Clin N Am. 2024;42(2):287-302.
Centers
for Disease Control and Prevention. Data and Maps for Powassan. Updated June 3,
2026.
Ho
BM, Davis HE, Forrester JD, et al. Wilderness Medical Society clinical practice
guidelines for the prevention and management of tick-borne illness in the
United States. Wilderness Environ Med. 2021;32(3):474-494.
Varon
AR, Prusinski MA, O'Connor C, et al. Epidemiology and risk analysis of Powassan
virus infection, New York state, USA, 2013-2023. Epidemiol Infect.
2026;154:e21.
Centers
for Disease Control and Prevention. About alpha-gal syndrome. Published January
5, 2026.
Stern
O. Summer marks peak season for tick-borne diseases: how to educate patients.
Published August 10, 2026.
This post is intended for
clinical education purposes and does not replace individualized clinical
judgment or current prescribing guidance.