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Wednesday, November 20, 2024
Breast care coordinators help expand cancer genetic testing
Wednesday, November 13, 2024
Test Results- Healthstream
Test Results
Incorrect answers in red.
1) The principle that without accurate documentation, a patient intervention cannot be said to have occurred, may be restated as:
- Document everything you see.
- If it wasn’t documented, it wasn’t done.
- Document everything even before it happens.
- Always sign every note that you write.
2) When documenting patient care, a health care professional should
- use his or her professional judgment to determine what is important.
- include every detail seen during patient care.
- consider everything important.
- include everything said during patient care verbatim.
3) The primary reason that documentation is important is
- to avoid liability for medical errors.
- to evaluate the health care professional’s performance.
- to provide the patient with a record of his or her care.
- to ensure good patient care.
4) Within a legal context, a court is more likely to believe
- the health care professional’s oral testimony of what happened.
- that the proper procedure was followed.
- a patient’s testimony of what happened.
- the written medical record of what happened.
5) When a health care professional documents information in a patient’s medical record, the health care professional
- should indicate if a late entry was made.
- must document the information as it happens.
- may document information before it happens.
- may document procedures performed by another health care professional.
6) When a health care professional documents what a patient says, the health care professional
- may paraphrase in shorter form what the patient said for efficiency.
- is expected to write down everything that was said verbatim.
- should make a good faith effort to record important information verbatim.
- should follow the adage: if it wasn’t recorded, it wasn’t said.
7) A health care professional must be objective when documenting a patient’s medical record, which means
- avoiding judgmental comments.
- not using your professional judgment regarding what is important to document.
- a health care professional must make value judgments about a patient’s care.
- a health care professional must sign his or her entries in the patient’s medical record.
8) If a health care professional makes a mistaken entry in a patient’s medical record, the health care professional should
- correct it so long as the mistake is corrected on the same day it was written.
- follow the health institution’s policies regarding corrections.
- delete or cover the erroneous entry, then enter the correct information.
- use his or her judgment on what to do based on a case-by-case basis.
9) Which of the following rules correctly states what you should NOT do when documenting a patient’s medical record?
- Don’t make a late entry.
- Don’t document for someone else.
- Don’t use your judgment, document everything.
- Don’t use abbreviations.
10) Which of these health care professional notes is an example of good documentation:
- “12:30, 12/25/2009. Patient C/O pain in the hip. RN notified. Jane Doe, CNA.”
- “Patient found on the floor, bleeding noted, the patient seemed confused.”
- “12/25/2009. The patient’s temperature was noted to be 103 degrees, and the patient was noted to be very diaphoretic. Jane Doe, CNA.”
- 17:00, 12/25/2009. Bleeding noted from surgical incision site on left hip. Vital signs were taken, within normal limits, and recorded. The patient, when asked, had no complaints. John Doe, RN, notified of bleeding at 17:10. Jane Doe, CNA.”
Saturday, September 28, 2024
Loose stools or going more often can be caused by a number of factors related to cancer, including cancer treatments and certain cancers themselves:
Cause | Explanation |
|---|---|
Cancer treatments | Many cancer treatments, such as chemotherapy, radiation, immunotherapy, targeted therapy, and bone marrow transplants, can cause diarrhea. These treatments can damage the lining of the gastrointestinal tract, making stools softer and more watery. |
Certain cancers | Some cancers, such as pancreatic, gastric, and colorectal cancer, can cause diarrhea. |
Infections | Cancer treatments can make you more susceptible to infections, which can cause diarrhea. Antibiotics used to treat some infections may also cause diarrhea. |
Surgery | Surgery can cause diarrhea if certain parts of the intestine are removed. |
HPI
History of Present Illness
Red flag symptom of cancer you can only spot at night
Red flag symptom of cancer you can only spot at night
Cancer affects 1 in 2 people in the UK and this symptom is only possible to spot at night.
Anti-inflammatory' citrus fruits could strengthen blood vessels and 'prevent' blood clots
“Additionally, citrus fruits contain flavonoids, which are plant compounds that have anti-inflammatory and anti-clotting properties. “These flavonoids can help to reduce inflammation in the body, which can also lower the risk of blood clots.”Mar 19, 2023
Anti-inflammatory' citrus fruits could strengthen blood vessels and 'prevent' blood clots
Citrus fruits like lemons offer promising anti-clotting effects backed by research.
By Diana Buntajova, Health Reporter based in London, specialising in personal stories, breaking news, and nutrition.
British Heart Foundation: Understanding blood clots
Blood clots can lay the groundwork for serious health problems, ranging from heart attacks to strokes. While medicines called anti-coagulants are great at dissolving the harmful clots, citruses could also have a few tricks up their sleeves. An expert has shared that the small fruits could erect a barrier against the gel-like clumps.
From boosting your levels of vitamin C to offering anti-cancer powers, the colourful foods are packed with various health benefits.
What’s more, Nataly Komova, RD and fitness expert at JustCBD, shared that these popular fruits could reduce your risk of harmful blood clots.
Komova said: “Citrus fruits, such as oranges, lemons, and grapefruits can help to strengthen blood vessels and prevent blood clots.
'Anti-inflammatory' citrus fruits could strengthen blood vessels and 'prevent' blood clots
Citrus fruits like lemons offer promising anti-clotting effects backed by research.
British Heart Foundation: Understanding blood clots
Blood clots can lay the groundwork for serious health problems, ranging from heart attacks to strokes. While medicines called anti-coagulants are great at dissolving the harmful clots, citruses could also have a few tricks up their sleeves. An expert has shared that the small fruits could erect a barrier against the gel-like clumps.
From boosting your levels of vitamin C to offering anti-cancer powers, the colourful foods are packed with various health benefits.
What’s more, Nataly Komova, RD and fitness expert at JustCBD, shared that these popular fruits could reduce your risk of harmful blood clots.
Komova said: “Citrus fruits, such as oranges, lemons, and grapefruits can help to strengthen blood vessels and prevent blood clots.
Blood clots: Citrus fruits could help ‘prevent’ blood clots, expert suggests.
Blood clots: Citrus fruits could help ‘prevent’ blood clots, expert suggests. (Image: GETTY)
“They are rich in vitamin C, which is an antioxidant that helps to strengthen blood vessels and prevent damage to their walls. This can reduce the risk of blood clots forming in the first place.
“Additionally, citrus fruits contain flavonoids, which are plant compounds that have anti-inflammatory and anti-clotting properties.
“These flavonoids can help to reduce inflammation in the body, which can also lower the risk of blood clots.”
Don’t just take the expert’s word for it, as research published in the Pakistan Journal of Pharmaceutical Sciences also backs this claim.
The research team decided to evaluate the effects of lemon on different blood parameters and clotting.
Previous evidence had suggested that the yellow fruit offers anti-clotting and clot-breaking properties.
Sunday, September 22, 2024
Saturday, September 14, 2024
Extrapyramidal
Extrapyramidal refers to the localization of the motor dysfunction in the spinal tracts. EPS are motor problems that include Parkinsonian-like symptoms (stiffness, tremor, shuffling gait), acute dystonia (abrupt spasms of head and neck), and akathesia (physical restlessness).
Friday, September 13, 2024
Pneumonia ( PNA)
pneumonia (PNA)
Saturday, August 31, 2024
occipital stroke
What is a right sided ischemic stroke?
Right-Sided Stroke: Effects, Treatment, and Recovery
Ischemic. An ischemic stroke is caused by a decrease in blood flow to an area of the brain. Even a few minutes of inadequate blood flow can cause damage to the brain tissue. An ischemic stroke can be caused by a blood clot in a large blood vessel or a small blood vessel.Dec 17, 2021
In an ischemic stroke, a blood clot blocks the blood supply to part of the brain. In a TIA, unlike a stroke, the blockage is brief and there is no permanent damage. The blockage that occurs during a TIA often results from a buildup of cholesterol-containing fatty deposits called plaques in an artery. 9, 2024
A transient ischaemic attack (TIA), or mini stroke, happens when there's a temporary disruption in the blood supply to part of the brain. The disruption in blood supply results in a lack of oxygen to the brain. This can cause sudden symptoms like those of a stroke.Jun 26, 2024
Symptoms of an occipital stroke include a loss of a visual field, double vision, or difficulty recognizing faces. They may also entail nonvisual symptoms, such as a headache and a change in consciousness. The causes involve ischemia or hemorrhage within a blood vessel that supplies the brain.Oct 20, 2023
dysarthria
dysarthria
Dysarthria happens when the muscles used for speech are weak or are hard to control. Dysarthria often causes slurred or slow speech that can be difficult to understand.
Common causes of dysarthria include conditions that affect the nervous system or that cause facial paralysis. These conditions may cause tongue or throat muscle weakness. Certain medicines also can cause dysarthria.
What is a PFO on a TEE?
Transesophageal echocardiography (TEE) is accepted as the method of choice for the diagnosis of the patent foramen ovale (PFO).
However, direct anatomic confirmation regarding the presence or absence of a PFO on transesophageal imaging has been obtained in only a limited number of patients.
Definition. Patent foramen ovale (PFO) is a hole between the left and right atria (upper chambers) of the heart. This hole exists in everyone before birth, but most often closes shortly after being born. PFO is what the hole is called when it fails to close naturally after a baby is born.
pulmonary embolism (PE)
Reassuring against sepsis, will hold off on fluids given concern for PE
A pulmonary embolism (PE) is a blood clot that develops in a blood vessel elsewhere in the body (often the leg), travels to an artery in the lung, and suddenly forms a blockage of the artery.
Fluid Management in Sepsis Ryan M. Brown, MD1 and Matthew W. Semler, MD, MSc1
Among critically ill adults, sepsis remains both common and lethal. In addition to antibiotics and source control, fluid resuscitation is a fundamental sepsis therapy. The physiology of fluid resuscitation for sepsis, however, is complex. A landmark trial found early goal-directed sepsis resuscitation reduced mortality, but three recent multicenter trials did not confirm this benefit. Multiple trials in resource-limited settings have found increased mortality with early fluid bolus administration in sepsis, and the optimal approach to early sepsis resuscitation across settings remains unknown. After initial resuscitation, excessive fluid administration may contribute to edema and organ dysfunction.
Using dynamic variables such as passive leg raise testing can predict a patient’s hemodynamic response to fluid administration better than static variables such as central venous pressure.
Whether using measures of “fluid responsiveness” to guide fluid administration improves patient outcomes, however, remains unknown.
New evidence suggests improved patient outcomes with use of balanced crystalloids compared to saline in sepsis.
Albumin may be beneficial in septic shock, but other colloids such as starches, dextrans and gelatins appear to increase the risk of death and acute kidney injury.
For the clinician caring for sepsis patients today, the initial administration of 20 mL/kg of intravenous balanced crystalloid, followed by consideration of the risks and benefits of subsequent fluid administration represents a reasonable approach.
Additional research is urgently needed to define the optimal dose, rate, and composition of intravenous fluid during the management of patients with sepsis and septic shock.
INTRODUCTION
Sepsis, a dysregulated host response to severe infection, accounts for 2–6% of all hospital admissions and carries an in-hospital mortality of up to 15%.1–3 Mortality is even greater when sepsis is accompanied by hypotension and hypoperfusion (septic shock).3
Guidelines for sepsis management recommend early administration of antibiotics and intravenous (IV) fluid in addition to source control.
Despite multiple recent clinical trials examining fluid management in sepsis, fundamental questions about which intravenous fluid to administer and in what amount remain unanswered. This article summarizes the physiologic principles and scientific evidence currently available to help clinicians make decisions regarding fluid management for patients with sepsis.
PHYSIOLOGY OF FLUID ADMINISTRATION
Patients with sepsis experience altered oxygen delivery and extraction, in part due to varying degrees of actual and relative intravascular volume depletion from decreased oral intake, increased insensible losses, sepsis-induced vasodilation, increased venous capacitance, and capillary leakage.
The classic understanding is that during early sepsis most patients experience “relative hypovolemia” and the administration of intravenous fluid increases preload, which increases cardiac output, resulting in improved oxygen delivery to organs experiencing tissue hypoxia (Figure 1).
This classic understanding is increasingly recognized to be overly simplistic. There are many factors that influence tissue oxygen delivery and extraction other than hemodynamics. In addition, the hemodynamic response to intravenous fluid is determined by an intricate interaction of mean systemic filling pressure, right atrial pressure, venous resistance, ventricular compliance, and afterload.4
Fluid administration may affect many of these components, some of them deleteriously (e.g., fluid administration may decrease venous return by increasing right atrial pressure).5,6 The complexity of patients’ responses to fluid administration in sepsis is evidenced by numerous studies reporting that approximately half of patients with sepsis do not experience hemodynamic improvement after fluid bolus administration, and that right atrial pressure poorly predicts hemodynamic improvement with intravenous fluid administration.7–9 Moreover, the century-old Starling model conceptualizing maintenance of vascular volume as the balance of hydrostatic and oncotic pressure gradients between the vessel lumen and interstitial space has been challenged by the recent recognition of the importance of the endothelial glycocalyx.10 Because it is a primary determinant of membrane permeability, damage to the glycocalyx during sepsis may alter patients’ response to fluid resuscitation. Although the clinical implications of these findings are not yet fully understood, they argue against an overly simplified approach to understanding the effects of fluid composition and dose in sepsis.
INITIAL SEPSIS RESUSCITATION
Fluid administration is considered a fundamental part of early sepsis treatment.1
In the landmark Early Goal-Directed Therapy (EGDT) trial,11 Rivers and colleagues compared usual care to a protocolized approach to sepsis resuscitation using intravenous fluids, vasopressors, and blood transfusion among 263 patients in a single emergency department. In the usual care group, patients received arterial and central venous catheterization and were administered IV fluid to maintain a central venous pressure (CVP) of 8–12 mm Hg, and vasopressors to maintain mean arterial pressure (MAP) ≥65 mm Hg. The EGDT group used the same hemodynamic targets, but additionally received continuous monitoring of central venous oxygen saturation, with blood transfusion for a hematocrit less than 30% and dobutamine administration to achieve a central venous saturation ≥ 70%. During the 6 hours of intervention, EGDT patients received more IV fluid (mean 5.0 vs 3.5 L; P < 0.001), blood transfusions (64.1% vs 18.5%; P<0.001), and dobutamine (13.7% vs 0.8%; P < 0.001). In-hospital mortality was 16% lower with EGDT compared to usual care (46.5% vs 30.5%; P = 0.009).
The remarkable improvement in mortality reported in this landmark trial led to incorporation of goal-directed fluid resuscitation into the recommendations for early sepsis management in the Surviving Sepsis Campaign (SSC) Guidelines.12 For more than a decade, this approach to sepsis fluid management was recommended in international guidelines, consensus statements, and hospital quality metrics. Three recent large, multicenter trials, however, did not report a benefit to EGDT compared to current usual sepsis care. The ProMISE13 (n=1243), ARISE14 (n=1588), and ProCESS15 (n=1341) trials all compared usual care to EGDT protocols based on the original EGDT trial. All three failed to demonstrate a benefit with EGDT (or protocolized usual care in ProCESS). A patient-level meta-analysis of these three trials3 also found no mortality benefit to EGDT. All-cause mortality at 90 days was 24.9% with EGDT and 25.4% with usual care (P = 0.97). Furthermore, the meta-analysis reported that EGDT increased the length of stay in the intensive care unit (5.3 vs 4.9 days; P = 0.04), the duration of cardiovascular support (1.9 vs 2.9 days; P = 0.01), and the cost of the hospitalization.
Several factors may account for the difference in results between the Rivers trial and the three recent trials of EGDT. First, the Rivers trial was a small, single center trial and therefore prone to type I error. Second, the difference between the EGDT and usual care groups in volume of fluid administered was modest in all three recent trials. In ProCESS, the trial with the largest separation between groups, there was a 1.1 L difference in fluid administered in the first 6 hours after enrollment, which falls short of the 1.5 L difference seen in the original Rivers study (Figure 2). Third, patients in the recent three trials were enrolled later after presentation to the Emergency Department, potentially missing a key period of early intervention. Fourth, the significantly lower mortality rates in the modern trials could imply that they enrolled less severely ill patients than the original trial, limiting the potential benefit of EGDT. Ultimately, the many changes in critical care and sepsis management over the decade and a half between the original EGDT and the three recent trials may preclude direct comparison of the studies and a conclusive understanding of the implications for optimal fluid management in early sepsis.
Sunday, August 25, 2024
Lung disease
There are two types of lung diseases: obstructive lung disease and restrictive lung disease.
Obstructive lung diseases like asthma and chronic obstructive pulmonary disorder (COPD) cause more trouble when you’re exhaling air.
Restrictive lung diseases such as pulmonary fibrosis make it harder to inhale air.
pneumothorax
Also known as: collapsed lungs
Usually caused by injury to the chest and prolonged lung conditions, which may include:
- Chest injury: caused due to any blunt or penetrating injury to the chest. Car accidents, physical assaults, or medical procedures can lead to lung collapse.
- Lung disease such as chronic obstructive pulmonary disease (COPD), emphysema,cystic lung diseases, pneumonia like staphylococcal pneumonia can cause collapse.
- Mechanical ventilation: the ventilator can create an imbalance of air pressure within the chest and the lung may collapse completely.
- Ruptured air blisters: small air blisters can develop on the top of your lung. These blebs sometimes burst — allowing air to leak into the space that surrounds the lungs.
Risk factors include:
- Smoking
- Lung diseases
- Hospitalization and on ventilator
- Family history - certain types of cystic lung diseases leading to pneumothorax run in families
- If you are experiencing new, severe, or persistent symptoms, contact a health care provider.
- The symptoms include:
- A steady ache in the chest
- Shortness of breath, or dyspnea
- Tightness in the chest
- Turning blue, or cyanosis
- Severe tachycardia, or a fast heart rate