Topics
Dermatology
Mask exemptions for facial skin diseases: are they warranted?
To the editor: Clinicians are faced with requests for mask exemptions but guidance remains limited. In keeping with the Australasian College of Dermatologists’ guidelines,1 we believe skin problems are rarely severe enough to warrant exemption. The Department of Health and Human Services states people with “a serious skin condition of the face” are eligible for mask exemption,2 but this statement is open to interpretation. Mask exemptions for skin conditions are provided by numerous clinicians and not limited to dermatologists. Regardless of immunisation status, cases that may warrant exemption include severe dermatitis with crusting or weeping; severe infections such as impetigo or eczema herpeticum; bullous dermatoses, ectodermal dysplasias and other rare conditions featuring facial skin fragility; and post‐surgical procedures involving grafts or flaps where masks may impede healing. In addition, treatments for actinic damage such as 5‐fluorouracil, imiquimod or photodynamic therapy may cause severe inflammation.3 We suggest if exemptions are warranted, duration should be minimised, which may be before resolution of the dermatoses (eg, 2weeks followed by a review). This is essential given masks have been key in reducing severe acute respiratory syndrome coronavirus 2 (SARS‐CoV‐2) transmission.4 The development of an assessment pathway for facial dermatoses impeding mask use may be beneficial and should differentiate between health care workers, who wear fit‐tested masks, and the general public, guiding prompt treatment and follow‐up to facilitate a return to mask use. From our experience, facial masks may irritate the skin from pressure, sweating and humidity, and commonly aggravate underlying dermatoses, such as seborrheic dermatitis, acne or rosacea. Facial masks may rarely cause allergic contact dermatitis,5 and these cases should involve a contact dermatitis expert. Education regarding skin care is vital, in particular regular cleansing and reducing the number of products used which may aggravate acne. When utilising reusable masks, it is important to opt for an appropriate material such as light‐coloured cotton and maintain mask hygiene, which includes daily mask changes, regular washing, not sharing masks, and taking regular breaks from mask wearing. In summary, clinicians should remain vigilant when writing mask exemptions, aiming to minimise the duration by treating underlying skin problems and providing patient education.
Kajal Patel · Rosemary L Nixon
In‐transit cutaneous squamous cell carcinoma
A 79-year-old man presented with painful lesions over his left arm on a background of non-Hodgkin lymphoma, which was well controlled on rituximab
Luke S McLean · Danny Rischin
Acute lymphangitis
A 7-year-old girl presented to the emergency department with fever and right forearm redness
Yu‐Lin Tai · Chien‐Yu Lin
Paediatric dermatofibrosarcoma protuberans: a neglected scar‐like plaque in a child
An 11-year-old girl presented with a solitary, non-tender, erythematous, indurated plaque resembling keloid slowly growing on her left upper chest for 5 years
Yi‐Teng Hung · Jennifer Wu · Chun‐Yu Cheng
Erythema ab igne
A 77-year-old woman presented with a 5-month history of an asymptomatic rash affecting her lower abdomen and proximal thighs
Emily K Kozera · Deshan F Sebaratnam
A non‐healing ulcer: amelanotic melanoma
A 73-year-old woman presented with a 7-month history of a non- healing ulcer on her left hallux
Michelle KY Chen · Deshan Frank Sebaratnam
Prurigo pigmentosa: the “keto rash”
A 29-year-old Korean woman presented with a pruritic, reticulate, red-brown, papular eruption overlying her clavicle and neck, occurring in the setting of carbohydrate restriction
Blake P Mumford · Anita Lasocki
Time to address the neglected burden of group A Streptococcus
To the Editor: The toll of group A Streptococcus is dramatically unappreciated, despite increasing evidence of its burden.1 In Australia and New Zealand, we recently demonstrated that group A streptococcal throat and skin infections cause a sizable burden at the population level — cellulitis is the main contributor to the total burden of all group A streptococcal diseases and acute rheumatic fever and rheumatic heart disease contribute disproportionately relative to their frequency of occurrence.2,3 At a global level, the burden of group A Streptococcus is not abating. Global Burden of Disease data suggest that incident cases and deaths due to rheumatic heart disease alone have surpassed those of meningitis (Box). In 2019, more than 85% of rheumatic heart disease cases occurred among people aged under 35 years.4 No other group A streptococcal‐specific endpoints are available from the Global Burden of Disease data, yet all‐cause cellulitis was ranked the 24th most frequently occurring condition in high income countries in 2019.4 Group A Streptococcus causes outbreaks of poststreptococcal glomerulonephritis, contributing to the burden of chronic renal disease, and it is estimated to be the fifth most lethal pathogen on the planet, behind the human immunodeficiency virus (HIV), Mycobacterium tuberculosis, Plasmodium falciparum and S. pneumoniae, yet expenditure on vaccine development is only 0.17% of that spent on vaccines for HIV infection, malaria and tuberculosis.5 The divergence in numbers of cases and deaths due to group A Streptococcus compared with meningitis partially demonstrates the value of vaccination. Another major benefit of vaccination is a substantial reduction in antibiotic consumption. Indeed, pharyngitis is a major driver of antibiotic consumption globally, and an estimated 17% of antibiotic prescriptions for pharyngitis among children in the United States could be prevented by a group A Streptococcus vaccine.6 Two major initiatives aim to progress vaccine development. The Australian Strep A Vaccine Initiative (ASAVI) and the Strep A Vaccine Global Consortium (SAVAC) are addressing technical and investment barriers and leading at least one of the current vaccine candidates to an efficacy trial for pharyngitis prevention by 2024.5 An effective vaccine may prevent health and economic burdens due to the full range of group A streptococcal diseases and associated antibiotic consumption. Box – Estimated number of new cases (left) and deaths (right) due to meningitis and rheumatic heart disease globally* * Data obtained from the Global Burden of Disease study 2019.4
Jeffrey W Cannon · Julie Bennett · Michael G Baker · Jonathan R Carapetis
Anti‐MDA‐5‐positive amyopathic dermatomyositis with cutaneous ulcerations
A 78-year-old woman presented with a recurrent painful ulcerating rash on her hands
Yanjun Chen · Gim Gee Teng · Winnie ZY Teo
Dust diseases in modern Australia: a discussion of the new TSANZ position statement on respiratory surveillance
New measures are designed to improve health outcomes for workers in the coal mining, artificial stone and other dust‐generating industries In Australia, there has recently been a worrying resurgence of dust‐related lung diseases (pneumoconioses) previously assumed to be obsolete. Pneumoconioses are chronic fibrotic lung diseases produced by inhaling mineral dust or dusts (pneumon = lung; konis = dust [Greek]). Conditions include coal workers’ pneumoconiosis (black lung disease) and silicosis.1,2,3,4 Many cases of these diseases have been described in Australia for the first time in over 40 years, including a new type of accelerated silicosis caused by cutting and polishing engineered (artificial) stone seen in kitchen and bathroom benchtop workers.5,6 The latter has occurred in men, often at the height of their working lives, producing much disability and distress and resulting in completely preventable deaths. Artificial stone silicosis differs from other types of silicosis in that it progresses more rapidly and is also associated with a higher rate of development of autoimmunity than classical silicosis. Pneumoconiosis has recurred primarily due to a widespread failure of regulatory controls in a situation where the medical evidence for efficacy of surveillance and prevention is very well established.7,8,9 This has included deficiencies in dust monitoring and control, even in industries where lung health is notoriously at risk (eg, mining), as well as potential changes in dust exposure due to increases in length of shifts and changes in mining technologies.9,10,11 New technologies may have altered the types and characteristics of respirable dust particles as well as the total dust levels.4,12 In some industries, new products like artificial stone have been introduced without adequate awareness of likely hazards, alongside lack of labelling, inadequate respiratory protection, and widespread complacency about dust control measures.13 Dry cutting of stone is notoriously dangerous,7,8 yet was occurring frequently and is still not banned throughout Australia. Many employers (often in small businesses without access to any occupational medical advice) did not appreciate the potential hazards of products they were using, and were not warned by the regulators. Thus, they failed to assess the type or levels of respirable dusts, implement any health surveillance, or use even basic dust control measures.7,8 Because symptoms occur only very late in these diseases, workers were often unaware of any adverse effects. Many workplaces were non‐unionised and workers came from non‐English speaking backgrounds, and did not have access to information about dust hazards and ways to find help. Workers were reluctant to be identified because of job insecurity and financial concerns. Even after a respiratory abnormality had been identified, there was sometimes a failure to identify the disease as occupational in origin.10,11 It was only after cases of severe disease were described by the medical profession, and after several cases had been referred for lung transplantation, that the resurgence of pneumoconiosis was identified.3,4,5 These events are a stark reminder that occupational lung diseases are still a real issue in Australia and that we as health professionals need to maintain vigilance to prevent them in the future. As health professionals, we also need to be aware of the full range of health effects resulting from dust exposures. Inhaled dusts have been shown to cause a broader range of disorders than was originally understood.7,8,14 Pneumoconiosis is only one of several lung disorders which can arise from dust inhalation. In general, high dust levels are needed to produce lung fibrosis; however, other diseases have different, often lower, dose–response profiles. There is now convincing evidence that coal and silica/silicate dust inhalation also produces chronic bronchitis, emphysema and diffuse dust‐related pulmonary fibrosis,7,8,14 and that these effects are additive and not only attributable to tobacco smoking. It is also underappreciated that lung cancer and tuberculosis risk rises in a dose‐related manner after silica exposure, and particularly with silicosis itself.7,14,15 Dust exposure is a factor related to several systemic connective tissue diseases,16,17 including Sjögren’s syndrome, rheumatoid arthritis and mixed connective tissue disorder,18 and renal dysfunction has also been described.7,8 Positive auto‐antibodies are particularly common after artificial stone exposure.16 Clinicians must therefore be aware that inhaled dust produces a broader spectrum of disease than just pneumoconiosis. The primary management of pneumoconiosis has always been to reduce or stop dust exposure. This slows the rate of progression of disease and increases time from exposure to development of symptoms (or disease latency).7,8,19 This has been the rationale for respiratory surveillance programs, which involve regular assessment of a worker’s respiratory health in the workplace every few years, and usually include a questionnaire, spirometry and chest x‐ray, with reduction or removal from exposure once a threshold for early disease diagnosis has been reached. These programs have been the cornerstone of the reductions in incidence of pneumoconiosis worldwide19,20 and are compulsory for workers exposed to several dusts in most Australian states and territories. General practitioners often become involved in these programs either as examining doctors or after an abnormal result has been detected, and are key players in ensuring disease recognition, implementing appropriate work plans, and referring for support. It was because of serious concerns about disease resurgence that members of the Thoracic Society of Australia and New Zealand (TSANZ), Australia’s primary organisation representing respiratory health, developed recommendations in June 2016 aimed at controlling coal mine lung dust diseases.3 The TSANZ suggested standardisation of coal mine dust exposure limits throughout Australia, and alignment to international standards (which were generally lower levels than those in Australia). It also suggested a standardised national surveillance program for at‐risk workers and highlighted the need for better education regarding occupational hazards.3 Following media interest and political support, the federal government established a National Dust Disease Taskforce21 to establish a national approach to the prevention, early identification, control and management of occupational dust diseases. It supported establishing a National Dust Disease Register and provided some funds for new research.21 To assist with the forthcoming recommendations of this Taskforce, the TSANZ has reviewed the evidence and developed a position statement22 in light of advances in knowledge and new techniques available for diagnosing respiratory disease. Respiratory surveillance programs for pneumoconioses22 have been mainly based on the World Health Organization recommendations from the late 1970s,19 but respiratory medicine has advanced since those times, enabling detection of much earlier disease. Modern computed tomography scans provide excellent visualisation of lung anatomy at much lower radiation doses than before, and global initiatives have standardised lung function measurement and reporting.23 The gathering, storage and analysis of data have been revolutionised. In its position statement, the TSANZ recommends enhanced methods for respiratory surveillance of dust‐exposed workers using contemporary methods22 (Box 1). Despite legislated reductions in exposure limits,24,25,26,27 dust levels may not always achieve these limits, and workplace exposure data need to be collected and made available in a central repository to enable improved assessment of a worker’s likelihood of developing disease. This would also significantly improve existing understanding of dose–response relationships, especially with artificial stone. Periodic assessments of respiratory health need to involve a standardised format and high quality, standardised imaging and full lung function assessments. Workers with early abnormalities need to be optimally clinically assessed, treated where possible, and protected by suitable legislation from loss or downgrading of employment.22 Implementing such recommendations will inevitably involve detection of other lung disorders, including those which are non‐occupational in origin, and workers will be referred back to their GP for advice. It is therefore important that GPs understand the possible spectrum of diseases induced by dusts and other toxins, and obtain adequate and ongoing training in occupational lung disorders, including local support systems and when to refer for specialist advice (Box 2). The Royal Australian College of General Practitioners has a training resource for GPs which is a useful tool.28 Ultimately, such a system should prove beneficial to the health of both the individual and the community. However, it will require support and careful implementation in its initial stages. Early disease is difficult to distinguish in clinical practice from other lung pathologies, but difficulties in diagnosis can be overcome using modern techniques. International standards for diagnosis are available and new treatments are under evaluation. Multidisciplinary team meetings in hospitals have been established for respiratory disease diagnosis for many years and are now embedded nationally, and a similar system for occupational lung diseases would be a valuable addition to improving the diagnostic process. An occupational multidisciplinary team in each jurisdiction would bring together a wide range of specialties (primary care, occupational and respiratory medicine, occupational hygiene, radiology, pathology and allied health) and could assist hugely in improving diagnostic standards, improving expertise and disseminating information. This would be best advanced using new virtual technologies, which would also enhance involvement by community and rural physicians. The TSANZ recommendations represent best practice on the basis of existing information and need to evolve with new evidence. The TSANZ has also recommended careful evaluation of the efficacy of new measures using prospective studies, and updating in the light of new research. Changing the system would inevitably require increased resources. However, long term costs are likely to eventually decrease for health services and the economy, given the chronic debilitating nature of these preventable diseases. The TSANZ recommendations are a start in the process of re‐engaging industry and regulator, workers, doctors and politicians; hopefully, they will lead Australia towards a future where preventable death and disablement from occupational lung diseases does not occur. [Corrections added on 22 June 2021 after first online publication: the article title was amended and a footnote was added to Box 1.] Box 1 – Thoracic Society of Australia and New Zealand (TSANZ) proposed improvements to periodic health surveillance in the coal mining and artificial stone industries22 Regular training of staff in accordance with international standards of respiratory surveillance (including quality control and assurance). Plain chest radiographs to be performed using International Labour Organization recommended techniques, technically acceptable, with classification only by qualified thoracic radiologists, and compared with previous images. Individual spirometry to be performed according to American Thoracic Society/European Respiratory Society standards; results to be interpreted using reference values of the Global Lung Initiative. Serial data to be compared with longitudinal predicted values using the lower limit of normal to define lung function abnormality, and spirometry longitudinal data analysis software (SPIROLA). Dust monitoring to be performed under typical working conditions (≥ 75% capacity) and recorded using an accredited facility, with individualised data available for periodic surveillance. Extending surveillance methods for artificial stone exposure to potentially include low dose CT. Careful evaluation of the role of ultra low dose CT for coal miners and artificial stone workers in longitudinal prospective studies. Extending surveillance methods for all workers to include lung diffusing capacity (DLCO) at intervals of 3years or less; careful evaluation of such surveillance within longitudinal prospective studies. A flexible, individualised approach to the timing of surveillance of coal mine dust workers, including annual spirometry and DLCO if results are abnormal but do not yet fulfil diagnostic criteria for disease. Active case finding for artificial stone workers previously exposed to high respirable crystalline silica levels using conventional high resolution CT/spirometry/DLCO performed at accredited respiratory laboratories and radiological facilities using recommended protocols; follow‐up by expert treating specialists/teams, preferably at occupational respiratory disorder multidisciplinary team meetings. For artificial stone workers, pre‐employment plain chest radiographs to exclude major abnormalities. For artificial stone workers undergoing active case finding without abnormal chest x‐ray or high resolution CT, annual spirometry/DLCO and imaging 3‐yearly or more often depending on individual factors and test results. Chest x‐ray imaging to be complemented with high resolution CT scans in high risk groups (eg, borderline fibrosis found on plain chest radiographs and/or discrepancy with lung function findings). Improving existing medical databases to allow capacity to compare serial lung function data, occupational exposure history, imaging findings and dust measurements over time. Early evaluation of the diagnostic utility of best available tests (low dose CT, ultra low dose CT and DLCO) using data collected prospectively with consent from workers, ideally in a research setting. CT = computed tomography; DLCO = diffusing capacity of the lung for carbon monoxide. Adapted from: Perret et al. Respiratory surveillance for coal mine dust and artificial stone exposed workers in Australia and New Zealand: a position statement from the Thoracic Society of Australia and New Zealand. https://doi.org/10.1111/resp.13952. Licence at http://creativecommons.org/licenses/by/4.0. Box 2 – How to manage a case of possible pneumoconiosis in primary care: first steps Be aware that many dusts, fumes and vapours can cause lung diseases. The time between exposure and disease occurrence (latency period) can be very long, usually years. Take time to go through a patient’s full occupational history in detail, from leaving school to retirement. A chronological table of jobs may help (www.atsdr.cdc.gov/csem/exphistory/docs/CSEMExposHist-26-29.pdf). If the patient uses technical descriptions of a particular job, make sure you know exactly what they mean. Ask them to describe exactly what was done. Ask about conditions in the job, including dust controls like ventilation, use of personal protective equipment, dust measurements and any workplace respiratory health surveillance. Ask about shifts, including length of time worked and any improvements in symptoms when away from work (especially on holidays). Ask whether any other workers were affected. Ask if the patient has access to any safety data sheets. These are information sheets which are meant to be made available from the employer if a worker is exposed to a potentially hazardous exposure (www.safeworkaustralia.gov.au/sds). If unavailable, search the internet for the suspected agent of concern, or contact the Australasian Faculty of Occupational and Environmental Medicine to find a suitable occupational physician and obtain advice (www.racp.edu.au/about/college-structure/australasian-faculty-of-occupational-and-environmental-medicine). Make contact with an occupational health practitioner if possible (an occupational physician and/or occupational health nurse and/or occupational hygienist). Small employers may not employ such specialists, but a local occupational health practitioner may be a local GP. Be careful not to contact a patient’s employer without obtaining permission first! Your local WorkSafe or similar government agency may be helpful in identifying a potential hazard and can often provide anonymous advice (ACT: www.worksafe.act.gov.au; New South Wales: www.icare.nsw.gov.au; Northern Territory: worksafe.nt.gov.au; Queensland: www.business.qld.gov.au/industries/mining-energy-water/resources/safety-health/mining; South Australia: www.safework.sa.gov.au; Tasmania: worksafe.tas.gov.au; Victoria: www.worksafe.vic.gov.au; Western Australia: www.workcover.wa.gov.au). Keep careful records of all the above. Negative information is also useful. Ensure that a complete history of the patient’s other risk factors (eg, tobacco use, other inhaled substance usage) is recorded. Obtain relevant investigations performed to recommended standards (spirometry, chest x‐ray, computed tomography scan if indicated). If there is reasonable suspicion of an occupational disease, refer to an occupational physician and/or a respiratory physician with occupational lung expertise (www.racp.edu.au/about/college-structure/australasian-faculty-of-occupational-and-environmental-medicine; www.thoracic.org.au). Costs of care may be covered by WorkCover if a link with employment is established, but this may take time to confirm. Standards for accepting an occupational disease vary in different jurisdictions and do not always accord with medical diagnoses. Other support is available to workers via their local SafeWork or similar government agency.
Deborah H Yates · Jennifer L Perret · Margaret Davidson · Susan E Miles · AW Musk
Palmoplantar keratosis caused by arsenic toxicity
A 74-year-old Vietnamese man presented with a 1-year history of pruritic nodules on his feet
Kajal Patel · Alexander Gin · Laura Scardamaglia
Darier sign in mastocytoma
A 1-year-old boy presented with a 6-month history of a brown plaque on his left forearm
Samuel A Der Sarkissian · Deshan F Sebaratnam
Miliary EGFR mutated non‐small cell lung cancer
A 58-year-old man presented with shortness of breath on exertion and cough.
Mike M Nguyen · Melissa M Moore
Flagellate erythema: from diet, drugs to dermatomyositis
A fit 75-year-old man presented with a 1-day history of a widespread flagellate-patterned asymptomatic eruption involving the neck, trunk and upper arms
Cathy Y Zhao · Germana Consuegra‐Romero
Beyond skin deep: addressing comorbidities in psoriasis
Psoriasis is a chronic inflammatory disease that is commonly encountered in primary care and is associated with significant morbidity that extends beyond the skin manifestations. Psoriasis is associated with an elevated risk of psoriatic arthritis, cardiovascular disease, obesity, insulin resistance, mental health disorders, certain types of malignancy, inflammatory bowel disease and other immune‐related disorders, and hepatic and renal disease. Enhanced recognition of these comorbidities may lead to earlier diagnosis and potentially better overall health outcomes. Psoriatic nail involvement, severe skin disease and obesity are associated with a greater risk of psoriatic arthritis. Individuals with psoriasis should be routinely screened for psoriatic arthritis to allow for early intervention to improve long term prognosis. Life expectancy is reduced in people with psoriasis due to a variety of causes, with cardiovascular disease and malignancy being the most common aetiologies. Psoriasis affects several factors that contribute to worsened quality of life and increased risk of depression and anxiety. Effective therapies are now available that have been shown to concurrently improve skin disease, quality of life and psychiatric symptoms. As the concordance between psychosocial impact and objective disease severity does not always correlate, it is essential to tailor management strategies specifically to the needs of each individual. Cigarette smoking and excess alcohol consumption are among the most important modifiable risk factors that increase the likelihood of psoriasis development and severity of skin disease. This provides a compelling rationale for smoking cessation and limiting alcohol intake in people with psoriasis beyond their traditional harmful health consequences.
Tom Kovitwanichkanont · Alvin H Chong · Peter Foley
How to perform a skin biopsy
The skin has more disease processes than any other organ system in medicine, with over 3000 dermatological conditions described
Kirsty JL Wark · Saxon D Smith · Deshan F Sebaratnam
Pretibial metastatic basal cell carcinoma
A 72-year-old immunocompromised woman presented with a 6-month history of a rapidly growing right pretibial lesion and a palpable right groin lump
Phillip Cantwell
Orbital rhabdomyosarcoma: a rare ophthalmic condition
A previously well 6-year-old girl presented to her doctor with a mildly injected right eye and upper eyelid swelling
Jiyeon Kim · Jonathan G Ussher
Histiocytoid Sweet syndrome
A 48-year-old man presented with a 3-day history of a rapidly progressing painful and pruritic cutaneous eruption and fever
Kirsty JL Wark · Helena Crawshaw
Squamous cell carcinoma arising from a nasojugal cyst
A 76- year- old man with no significant past medical history presented with a 4- month history of a rapidly growing left nasojugal mass
Phillip Cantwell · Helena Van Dam
Antiphospholipid syndrome: a clinical review
Antithrombotic treatment is gold standard and effective
Veronica Mezhov · Julian D Segan · Huyen Tran · Flavia M Cicuttini
Abdominal pain in the emergency department: the importance of history taking for common clinical presentations
A 26- year- old man presented to the (ED) overnight with severe and disabling abdominal pain
David J Holland · Michael J Holland
Hereditary haemorrhagic telangiectasia
A 52-year-old woman presented with symptomatic iron deficiency anaemia …
Varitsara Mangkorntongsakul · Cecily J Forsyth
The Australasian Society of Clinical Immunology and Allergy infant feeding for allergy prevention guidelines
Food allergy has been increasing in incidence worldwide, with rates in Australia the highest in the world
Preeti A Joshi · Jill Smith · Sandra Vale · Dianne E Campbell
Preventing ovarian failure associated with chemotherapy
A new PBS indication for goserelin aims to reduce infertility and other health issues for young Australian women who receive chemotherapy
Wanyuan Cui · Catharyn Stern · Martha Hickey · Fiona Goldblatt · Antoinette Anazodo · William S Stevenson · Kelly-Anne Phillips